Antibiotic Overuse Contributes to Rendering Them Useless

(Excerpted from CBS News)

Two years ago, Bobbie Mackeon got a paper cut. She thought it was no big deal. But it got infected. Bobbie, a nurse practitioner, spoke with the doctors at her hospital, and they all figured an antibiotic would take care of it. It didn’t. Nor did the next two antibiotics she tried. “The bug that was in there was eating these antibiotics for breakfast,” she says.

With her infection still raging, Bobbie turned to an intravenous antibiotic, which finally did help. But complications then led to potentially fatal blood clots. “The blood clot was about four inches across and it had little bubbles around it, which told us it was infected,” she says.

The clots were so severe that her life now depends on high doses of blood thinners, which created new problems. Any injury can now be life threatening, because it is difficult to stop her body from bleeding. Now, instead of running as she used to, she works out, carefully, in her garage.

That a tiny infection could spiral into a life-threatening condition doesn’t surprise Michael Shnayerson or Mark Plotkin. In their new book, “The Killers Within,” they explore why antibiotics don’t work the way they used to. Susan Spencer reports.

“The bad news is the bad bugs are getting badder faster. They’re getting stronger faster,” says Plotkin. “We no longer live in a time when antibiotics work 100 percent of the time and in fact there are some bugs resistant to all the antibiotics used against them. And people are dying,” says Shnayerson. Even common staph infections, once easily cured, now can kill. The superbugs, which first showed up in hospitals, are everywhere.

The culprit: overuse of antibiotics. Like all living things, bacteria adapt to the environment. Faced with an antibiotic, a few hearty bugs survive. Those superbugs then multiply, creating a new strain that the old antibiotic can’t touch.

The more antibiotics used, the more the bacteria evolve. After five decades, Americans have been using and now overusing these "wonder drugs."

“Too many doctors still feel that antibiotics basically do no harm. And that i'ts better to give them than not,” says Shnayerson.

Patients demand them even for colds - viral infections against which antibiotics are useless. Adding to overuse is agriculture. Farmers use antibiotics in feed, mostly to make the animals grow a little faster. According to Plotkin, a recent study estimates that farms use 70 percent of all antibiotics in the U.S.

“I think were looking at the end of the antibiotic era if we don’t start changing our behavior,” says Mackeon’s colleague, Dr. David Witt, an infectious disease specialist at Kaiser Permanente in California.

Most chilling, Witt says, is the rising rate of resistance in one very common bug, pneumococcus, which causes most cases of pneumonia, ear infection, and sinusitis. “Everybody gets them. All of your kids have had them,” Witt says.

When Gail Mullin’s 3-week-old daughter, Hollie, got her first ear infection, Gail, like many mothers, asked for antibiotics. But more infections followed. And the antibiotics kept coming: amoxicillin, augmentin, zithromax, receptin - 17 different courses in one year. By the time Hollie was 18 months old, she contracted a bacteria that was resistant to every oral antibiotic available.

Her only hope was a drug called vancomycin, a potent antibiotic given intravenously. The doctor told her it was the last option.

Hollie was lucky. Vancomycin did work. Her parents learned a lesson. “By giving Holllie as many antibiotics as we did by the time she was a year old we created a superbug,” says her mother.

Vancomycin saved Mackeon as well. But now she struggles with the blood clots. Despite efforts to regain her health, Bobbie has been unable to work for much of the past two years.

“Bobbie is a good example of the worst-case scenario,” says Witt. He expects to see many more such cases, which is why he carefully checks and rechecks every antibiotic ordered at the hospital.

“I don’t want to give you the wrong impression. I love antibiotics. They are life-saving, they are miracles. And I want to save them for when we need them,” he says.

There is some good news. A new study finds that doctors are ordering fewer antibiotics for children. But experts estimate that there’s still are tens of millions of unnecessary prescriptions being written each year.

Now even Vancomycin is losing its punch. This prospect is “chilling,” Witt says.

Specific Types of Nosocomial Bloodstream Infections

Nosocomial etiologies in BLOODSTREAM INFECTIONS include the following:

Coagulase-negative staphylococci, 40%
Enterococci, 11.2%
Fungi, 9.65%
Staphylococcus aureus, 9.3%
Enterobacter species, 6.2%
Pseudomonads, 4.9%
Acinetobacter baumannii with substantial antimicrobial resistance is reported with increasing frequency.

Comparison of Community and Health Care-Associated MRSA Infection

JAMA says that, looking back, the year 2003 will probably be recognized as the year that methicillin-resistant Staphylococcus aureus (MRSA) really started to take off in the community. Rather than be confined to the institutionalized, MRSA appeared to now attack those in the prime of life, even the most athletic among us. These investigators from the Minnesota Department of Health (Minneapolis), French Reference Centre for Staphylococci (Lyon), and the Centers for Disease Control and Prevention (Atlanta) performed a prospective study of MRSA cases in Minnesota during calendar year 2000.

Using 12 laboratories, they were able to identify sufficient numbers of community-associated cases (CA) to make valid demographic, clinical, and microbiological comparisons with healthcare-associated cases (HCA).

The 12 referring laboratories were dispersed throughout the state and serviced representative populations. They identified MRSA cases from clinical cultures rather than systematic survey. Facility infection control personnel then performed chart review to gather appropriate demographic and clinical information in order to determine whether the case was CA or HCA. HCA was prospectively defined by conventional criteria. CA was determined by exclusion of HCA, so all suspected CA cases after chart review subsequently underwent interview. Overall, 13% of such suspected CA cases were reclassified to HCA after the interview revealed information missing from the record. All CA and some HCA isolates were subjected to pulsed-field gel electrophoresis (PFGE), as well as standard microbiological investigation to determine speciation and resistance patterns, and PCR was used to confirm persistence of the mecA gene. Finally, samples of 26 CA and 26 HCA isolates were sent to the French reference laboratory, where blinded assays were performed for a compendium of toxin-associated genes in the 2 sets of organisms.

During 2000, there were 4612 patients with S aureus isolates from the reference facilities. Of these, 1100 were MRSA, with 937 (85%) classified as HCA, 131 (12%) as CA, and 32 (3%) not classified because of insufficient information. The proportion of CA cases was higher in areas of the state outside of the greater Minneapolis-St. Paul area (OR, 1.66; CI, 1.24-2.15). CA patients were younger (median age, 23 vs 68 years), even after exclusion of data from 2 pediatric hospitals (median age, 30 vs 70 years). Also, CA-MRSA patients were more likely to be nonwhite (OR, 3.13) and have lower median household income compared with HCA-MRSA and especially the general population.

Underlying conditions were uncommon among children < 18 years of age with CA-MRSA, with only 9% having previous dermatologic illness. Most adults, on the other hand, had some health risk, with tobacco use (19%), diabetes (17%), dermatologic illness (13%), chronic obstructive pulmonary disease (6%), and hypertension (6%) most notable.

CA-MRSA was more likely than HCA-MRSA to be manifested as cutaneous or soft-tissue disease (OR, 4.25). Respiratory (OR, 0.22) and urinary (OR, 0.04) disease were much less common in the community. There was no significant difference in the incidence of bacteremia (4% among CA, 9% among HCA). Remarkably, 61% of CA patients were initially treated with ineffective antibiotics. Unfortunately, detailed outcome analysis was not possible.

Resistance patterns differed between CA and HCA strains, with the former generally susceptible to a wider range of non beta-lactam antibiotics, particularly ciprofloxacin (OR, 1.90) and clindamycin (OR, 1.46) or all 4 of the following: ciprofloxacin, clindamycin, gentamicin, and trimethoprim-sulfamethoxazole (OR, 5.88). A single PFGE clonal group accounted for 62% of CA-MRSA, with similar rates for all demographic subgroups. A second clone was also associated with a lesser number of CA cases. The following virulence factors were significantly more common in CA-MRSA: Panton Valentine leukocidin (PVL); enterotoxins A, C, and K; accessory gene regulator 3; and SSCmecIV).

PVL was present in 77% of CA, but only 4% of HCA isolates tested (OR, 5.01), and was almost always (90%) associated with skin infection in community patients. This cytotoxin has been found in different CA strains on 3 continents[1] and seems to enhance tissue necrosis and leukocyte dysfunction by membrane injury.

The investigators, since they are from public health agencies, offered important clinical suggestions based on their data. It is important to know the prevalence of CA-MRSA in your community, and be particularly alert to children with aggressive skin infection. All such children should be cultured for MRSA. If there is a history of contact with a patient with CA-MRSA or sufficient risk factors to suggest epidemic spread, empiric therapy with clindamycin or ciprofloxacin should be considered, rather than vancomycin. Surgical drainage should be performed when appropriate. Public quarantine and nasal or skin decolonization procedures are not necessary. Rather, physicians should educate patients and their families, as well as the general public, that CA-MRSA is an emerging threat and that suspected infections need prompt management.

JAMA December 10, 2003 (Volume 290, Number 22)
Vandenesch F, Naimi T, Enright MC, et al. Community-acquired methicillin resistant Staphylococcus aureus carrying Panton-Valentine leukocidin genes; worldwide emergence. Emerg Infect Dis. 2003;9:978-984.

Reducing Healthcare-Acquired Pneumonias

Oral hygiene has been proven to help reduce healthcare-acquired pneumonias (HAPs), including ventilator-associated pneumonia (VAP) and aspiration pneumonia.

In fact, the CDC now requires acute care hospitals to “develop and implement a comprehensive oral hygiene program" for patients at risk for healthcare-associated pneumonia.

For more exhaustive information regarding HAP AND VAP, go to:
http://www.sageproducts.com

Deadly Superbugs are Talking About You

Do germs communicate? Many scientists think so and are betting the chatter may hold the key to developing the next generation of drugs to fight killer superbugs.

The conventional wisdom has long been that the carpet-bombing approach is the best way to fight infection. But as evidence of bacterial bonding has mounted in the past decade, researchers are now focusing on antibiotics that will break down the lines of communication.

In the last 20 years, the number of scientists working in this field has jumped from a few solitary researchers to thousands. In Britain, the strategy is one of the top research priorities of a newly formed center dedicated to stopping superbugs.

“Bacteria are a bit like an army going into battle,'' said Dr. Paul Williams, professor of molecular biology at the center at Nottingham University. “Only when they've got strength in numbers do they tell their troops to start firing.''

The thinking is that if bacterial communication can be interrupted, the microbes might be incapacitated before doing any damage. And by not killing off the bacteria, they won't have the Darwinian opportunity to evolve into resistant strains.

Scientists are still years away from producing a commercially available drug. But if the strategy proves successful, it could open the way for new weapons against superbugs such as the deadly MRSA superbug — whose infection rate has jumped dramatically in the last two decades.

Researchers refer to the bacterial communication system as “quorum sensing.'' Just like in a company boardroom, a quorum is needed before any major action can be taken.

Bacteria communicate with each other by sending out a chemical signal that is in turn picked up by special receptors. Williams and his colleagues are developing enzymes to destroy the signal molecules.

Experts are also trying to break into other bacterial social activities. For instance, bacteria congregating to form a “biofilm'' achieve a type of super-resistance.

“If we can break them up, we can kill them,'' said Dr. Pete Greenberg, a microbiology professor at the University of Washington. Greenberg is working on methods to disable a bacteria that frequently attacks people with cystic fibrosis.

New strategies to fight bugs that don't end up boosting their immunity would be a big boost. Pharmaceuticals companies have been reluctant to invest in traditional antibiotics because many germs can develop resistance within months. The last new classes of antibiotics appeared in the 1990s.

“With only one or two antibiotics that are effective against a major pathogen, we are potentially living on borrowed time,'' warned Dr. Richard James, director of Britain's newly established Centre for Healthcare Associated Infections at Nottingham University.

“Unless we do something to change the situation, we are facing a post-antibiotic apocalypse.''

James, who is not involved in quorum sensing research, believes that it is one of the most promising avenues to developing new antibiotics. “Perhaps the answer to the problem of increasing bacterial resistance is for us to be even more clever than the bacteria,'' he said. “We could do this if we have antibiotics that disable the bacteria, which may then allow the host's immune system to kick in.''

Still, there are no guarantees that antibiotics based on quorum sensing will work. For instance, it's uncertain if knocking out communication lines in later stages of an infection would have any impact.

“There are no experiments to show that in a raging infection, a quorum sensing inhibitor could calm it down,'' said Greenberg. “It might already be too late by the time patients turn up with an infection.''

But with no new antibiotics on the horizon, scientists say new strategies must be attempted.

“Drugs that inhibit quorum sensing are in the unproven category, but there is still a possibility they could work,'' said Dr. Anthony Coates, a professor of medical microbiology at St. George's Hospital Medical School in London. “Quorum sensing might produce very effective antibiotics, but they might only work on specific species of bacteria,'' he said, adding that further tests on existing compounds is needed.

“The cupboard is running bare, and without any new antibiotics, we have to keep trying.''



By Maria Cheng
Associated Press, London
01 February 2007

Patients Become Partners

There's more than one way to skin a cat. Just ask Maryanne McGuckin, Dr.ScEd., who designed and implemented a creative program that resulted in a 34 percent increase in handwashing activity, based on calculated soap-usage, among a study-group of healthcare workers in New Jersey. Instead of enlisting the cooperation of the workers directly (as is typically the case when handwashing-compliance programs are re-emphasized in hospital settings), McGuckin and her research team went directly to the patients.

"Once we educated patients about the importance of handwashing, they became eager participants in our study," explained McGuckin, senior research investigator at the University of Pennsylvania Medical Center. After learning that handwashing is the single most important procedure that can be performed to prevent the spread of hospital-acquired (or nosocomial) infection, newly-admitted patients to the West Jersey Health System were invited to participate in the research effort.

Some 441 patients agreed to become "Partners in Your Care" for the duration of their hospitalization. As part of the six-week protocol, patients agreed to ask every healthcare worker who entered their room, "Did you wash your hands?" (For patients too shy or uncomfortable with such a direct approach, playful blue weebles -- with an attached "Did you wash your hands?" banner -- were attached to their hospital gowns.)

After conducting follow-up phone interviews (with 276 of the original 441 patients) and calculating handwashing rates (based on soap-usage per bed day and handwashings per bed day), the researchers concluded that soap usage by healthcare professionals increased 34% at all four participating hospitals. To translate, handwashing activity increased from 2 to 12 handwashings per 24-hour shift.

"Our findings document, for the first time, that the education of patients about their role in promoting handwashing compliance among healthcare workers can increase that compliance, as well as provide continuous reinforcement of handwashing principles to healthcare workers," said McGuckin.

The study results were presented by Dr. McGuckin at the seventh annual meeting of The Society for Healthcare Epidemiology of America, which was held in St. Louis, Missouri.

"This isn't rocket science," admits McGuckin, of her study, "but it's going to have a real impact." McGuckin and her team believe that patient-based educational programs such as the one designed by them can be quite effective in increasing handwashing compliance among healthcare workers - which, in turn, can reduce the risk of hospital-acquired infections in patients. "It's a win-win proposition," she adds, "because the patient's risk of acquiring a nosocomial infection is reduced and, over time, could impact on the hospital's infection rates."

For more information: http://www.hhreports.com/

Improving Adherence to Hand Hygiene Practice: A Multidisciplinary Approach

Didier Pittet, University of Geneva Hospitals, Geneva, Switzerland. © 2001 Centers for Disease Control and Prevention (CDC)

Abstract and Introduction
Abstract

Hand hygiene prevents cross-infection in hospitals, but health-care workers' adherence to guidelines is poor. Easy, timely access to both hand hygiene and skin protection is necessary for satisfactory hand hygiene behavior. Alcohol-based hand rubs may be better than traditional handwashing as they require less time, act faster, are less irritating, and contribute to sustained improvement in compliance associated with decreased infection rates. This article reviews barriers to appropriate hand hygiene and risk factors for noncompliance and proposes strategies for promoting hand hygiene.
Introduction

Hand hygiene is the simplest, most effective measure for preventing nosocomial infections [1,2]. Despite advances in infection control and hospital epidemiology, Semmelweis' message is not consistently translated into clinical practice [3,4], and health-care workers' adherence to recommended hand hygiene practices is unacceptably low [3,5-10]. Average compliance with hand hygiene recommendations varies between hospital wards, among professional categories of health-care workers, and according to working conditions, as well as according to the definitions used in different studies. Compliance is usually estimated as <50%.

Promotion of hand hygiene is a major challenge for infection control experts [3,19-21]. In-service education, distribution of information leaflets, workshops and lectures, and performance feedback on compliance rates have been associated with transient improvement [3,6,13,22,23]. No single intervention has consistently improved compliance with hand hygiene practices[24]. This review summarizes factors influencing lack of adherence by health-care personnel to hand hygiene procedures and suggests strategies for improvement.

Definitions

Two major groups of microorganisms are found on the skin: organisms that normally reside on it (resident flora) and contaminants (transient flora) [25]. Unless introduced into body tissues by trauma or medical devices such as intravenous catheters, the pathogenic potential of the resident flora is low [26]. Transient flora, which are easily removed by handwashing, cause most hospital infections resulting from cross-transmission [27-29].

The term hand hygiene includes several actions intended to decrease colonization with transient flora. This objective can be achieved through handwashing or hand disinfection. Handwashing refers to washing hands with an unmedicated detergent and water or water alone. Its objective is to prevent cross-transmission by removing dirt and loose transient flora [10,30].

Hygienic handwash refers to the same procedure when an antiseptic agent is added to the detergent. Hand disinfection refers to use of an antiseptic solution to clean hands, either medicated soap or alcohol. Some experts refer to the action of "degerming" as the use of detergent-based antiseptics or alcohol [21]. Hygienic hand rub is rubbing hands with a small quantity (2 mL to 3 mL) of a highly effective, fast-acting antiseptic agent.

Hand Hygiene Agents

If hands are known to be or suspected of being contaminated, transient flora must be eliminated by washing or disinfecting the hands to render them safe for the next patient contact. Plain soap with water can physically remove a certain level of microbes, but antiseptic agents are necessary to kill microorganisms [10,31-33]. Hand antiseptic agents are designed to rapidly eliminate most transient flora by their mechanical detergent effect and to exert an additional sustained antimicrobial activity on remaining flora. The multiplication of resident flora may be retarded as well, so that hand disinfection may be useful in situations in which microbiologically clean hands are required for extended periods.

Rotter showed that hand hygiene with unmedicated soap and water removed some transient flora mechanically; preparations containing antiseptic or antimicrobial agents not only removed flora mechanically but also chemically killed contaminating and colonizing flora, with long-term residual activity [30,34]. Alcohol-based preparations have more rapid action than products containing other antiseptics (e.g., chlorhexidine gluconate or providone iodine) [30,31,35].

Semmelweis observed that normal handwashing did not always prevent the spread of fatal infection [1] and recommended hand disinfection in a solution of chlorinated water before each vaginal examination. Hand disinfection is substantially more efficient than standard handwashing with soap and water or water alone [2,30], particularly when contamination is heavy[14,36-40]. Frequent handwashing may result in minimal reduction or even an increase in bacterial yield over baseline counts of clean hands [21,41].

Because alcohols have excellent activity and the most rapid bactericidal action of all antiseptics, they are the preferred agents for hygienic hand rubs, so-called "waterless hand disinfection." In addition, alcohols are more convenient than aqueous solutions for hygienic hand rubs because of their excellent spreading quality and rapid evaporation. At equal concentrations, n-propanol is the most effective alcohol and ethanol the least [30].

Alcohol-based hand rubs are well suited for hygienic hand disinfection for the following reasons: optimal antimicrobial spectrum (active against all bacteria and most clinically important viruses, yeasts, and fungi); no wash basin necessary for use and easy availability at bedside; no microbial contamination of health-care workers' clothing; and rapidity of action. After extensive reduction following hand disinfection with an alcohol preparation, it takes the resident skin flora several hours to become completely restored[30]. Since alcohol alone has no lasting effect, another compound with antiseptic activity may be added to the disinfection solution to prolong the effect. These antiseptics have recently been extensively reviewed by Rotter [30].

Prevention of bacterial contamination and subsequent infection requires timely hand cleansing. Guidelines have delineated indications for hand cleansing [10,32,42] but without reliance on evidence-based studies of microbiologic contamination acquired during routine patient care. To provide such evidence, we studied the dynamics of bacterial contamination of health-care workers' hands in daily hospital practice [43]. Our findings should help identify patient-care situations associated with high contamination levels and improve hand cleansing practices.

Structured observations of patient care were conducted by trained external observers, who took an imprint of the fingertips of the health-care worker's dominant hand to quantify bacterial colony counts at the end of a defined period of patient care[43]. Bacterial contamination on ungloved hands increased linearly during patient care (mean 16 CFU per minute, 95% confidence interval [CI][11-21]. Activities independently associated with higher contamination levels were direct patient contact, respiratory care, handling body fluids, and disruption in the sequence of patient care (all p <0.05).

Contamination levels varied according to hospital location, with the medical rehabilitation ward having the highest levels (>49 CFU, p = 0.03). Both the duration and type of patient care influenced hand contamination. Furthermore, simple handwashing before patient care, without hand disinfection, was also associated with higher colony counts (>52 CFU, p = 0.03), which suggests that hand antisepsis is better than standard handwashing. These findings suggested that intervention trials should explore the role of systematic hand disinfection as a cornerstone of infection control to reduce cross-transmission in hospitals.

Factors Influencing Noncompliance with Hand Hygiene

Risk factors for noncompliance with hand hygiene have been determined objectively in several observational studies or interventions to improve compliance [3,14,20,24,44-47]. Factors influencing reduced compliance, identified in observational studies of hand hygiene behavior, included being a physician or a nursing assistant rather than a nurse; being a nursing assistant rather than a nurse; being male; working in an intensive care unit (ICU); working during weekdays rather than the weekend; wearing gown and gloves; using an automated sink; performing activities with high risk for cross-transmission; and having many opportunities for hand hygiene per hour of patient care.

In the largest hospital-wide survey ever conducted[9], we also identified predictors of noncompliance with hand hygiene during routine patient care. Variables included professional category, hospital ward, time of day or week, and type and intensity of patient care, defined as the number of opportunities for hand hygiene per hour of patient care.

In 2,834 observed opportunities for hand hygiene, average compliance was 48%. In multivariate analysis, compliance was highest during weekends and among nurses (odds ratio [OR] 0.6, 95% CI 0.4-0.8). Noncompliance was higher in ICUs than in internal medicine (OR 2.0, CI 1.3-3.1), during procedures with a high risk for bacterial contamination (OR 1.8, CI 1.4-2.4), and when intensity of patient care was high (21 to 40 opportunities [OR 1.3, CI 1.0-1.7], 41 to 60 opportunities [OR 2.1, CI 1.5-2.9], >60 opportunities [OR 2.1, CI9 1.3-3.5]) compared with a reference level of 0 to 20 opportunities.

In other words, compliance with handwashing worsened when the demand for hand cleansing was high; on average, compliance decreased by 5% (±2%) per increment of 10 opportunities per hour when the intensity of patient care exceeded 10 opportunities per hour. Similarly, the lowest compliance rate (36%) was found in ICUs, where indications for handwashing were typically more frequent (on average, 20 opportunities per patient per hour).

The highest compliance rate (59%) was observed in pediatrics, where the average activity index was low (on average, eight opportunities per patient per hour). This study confirmed modest levels of compliance with hand hygiene in a teaching institution and showed that compliance varied by hospital ward and type of health-care worker, thus suggesting that targeted educational programs may be useful. These results also suggested that full compliance with current guidelines may be unrealistic[9,20,48] and that facilitated access to hand hygiene could help improve compliance.

Perceived Barriers to Hand Hygiene

Several barriers to appropriate hand hygiene have been reported [9,14,24,44-47]. Reasons reported by health-care workers for the lack of adherence with recommendations include skin irritation, inaccessible supplies, interference with worker-patient relation, patient needs perceived as priority, wearing gloves, forgetfulness, ignorance of guidelines, insufficient time, high workload and understaffing, and lack of scientific information demonstrating impact of improved hand hygiene on hospital infection rates.

Risk Factors for Noncompliance

Some of the perceived barriers for the lack of adherence with hand hygiene guidelines have been assessed or even quantified in observational studies [3,14,20,24,44-47]. The most frequently reported reasons associated with poor compliance, in addition to those mentioned above, are inconveniently located or insufficient numbers of sinks; low risk for acquiring infection from patients; belief that glove use obviates need for hand hygiene; and ignorance of or disagreement with guidelines and protocols.

Skin irritation by hand hygiene agents is an important barrier to appropriate compliance [49]. The superficial skin layers contain water to keep the skin soft and pliable and lipids to prevent dehydration of the corneocytes. Hand cleansing can increase skin pH, reduce lipid content, increase transepidermal water loss, and even increase microbial shedding. Soaps and detergents are damaging when applied to skin on a regular basis, and health-care workers need to be better informed about their effects. Lack of knowledge and education on this topic is a key barrier to motivation. Alcohol-based formulations for hand disinfection (whether isopropyl, ethyl, or n-propanol, in 60% to 90% vol/vol) are less irritating than antiseptic or nonantiseptic detergents. Alcohols with added emollients are at least as well tolerated and efficacious as detergents. Emollients are recommended and may protect against cross-infection by keeping the resident skin flora intact, and hand lotions help protect skin and may reduce microbial shedding [21].

The value of easy access to hand hygiene supplies, whether sink, soap, medicated detergent, or waterless alcohol-based hand rub solution, is self explanatory. Asking busy health-care workers to walk away from the patient bed to reach a wash basin or a hand antisepsis solution invites noncompliance with hand hygiene recommendations [9,48]. Engineering controls could facilitate compliance, but hand hygiene behavior should be carefully monitored to identify negative effects of newly introduced devices [50].

Wearing gloves might represent a barrier for compliance with hand hygiene [8,51,52]. Failure to remove gloves after patient contact or between dirty and clean body site care for the same patient constitutes noncompliance with hand hygiene recommendations[9]. Washing and reusing gloves between patient contact is ineffective, and handwashing or disinfection should be strongly encouraged after glove removal. In a study involving artificial contamination, organisms were cultured from 4% to 100% of the gloves and observed counts were up to 4.7 log on hands after glove removal [53].

Additional barriers to hand hygiene compliance include lack of active participation in promotion at the individual or institutional level, of a role model for hand hygiene, of institutional priority assigned to hand hygiene, of administrative sanctions for noncompliance; and of an institutional climate encouraging safety [14,22,41,54,55]. A system change may be necessary for improvement in hand hygiene practices by health-care workers.

Impact of Improved Hand Hygiene

Lack of scientific information on the definitive impact of improved hand hygiene on hospital infection rates has been reported as a possible barrier to adherence with recommendations. Hospital infections have been recognized for more than a century as a critical problem affecting the quality of patient care provided in hospitals. Studies have shown that at least one third of all hospital infections are preventable [56]. A substantial proportion of infections results from cross-contamination, and transmission of microorganisms by the hands of health-care workers is recognized as the main route of spread [57]. Seven quasi-experimental hospital-based studies of the impact of hand hygiene on the risk of hospital infections were published from 1977 to 1995 (Table 2) [7,22,58,60-63]. Despite limitations, most reports showed a temporal relation between improved hand hygiene practices and reduced infection rates.

We recently reported the results of a successful hospital-wide hand hygiene promotion campaign, with emphasis on hand disinfection, which resulted in sustained improvement in compliance associated with a significant reduction in hospital infections and methicilllin-resistant Staphylococcus aureus cross-transmission rates over a 4-year period [63]. The beneficial effects of hand hygiene promotion on the risk of cross-transmission have also been reported in surveys conducted in schools, day-care centers [64-68], and a community [69-71]. Although additional scientific and causal evidence is needed for the impact of improved hand hygiene on infection rates, these results indicate that improvement in behavior reduces the risk of transmission of infectious pathogens.

Improving Adherence with Practices

In 1998, Kretzer and Larson [46] revisited hand hygiene behavioral theories in an attempt to better understand how to target more successful interventions. These researchers proposed a hypothetical framework to enhance hand hygiene practices and stressed the importance of considering the complexity of individual and institutional factors in designing behavioral interventions. Behavioral theories and secondary interventions have primarily focused on the individual, which is insufficient to effect sustained change [46,72,73]. Interventions aimed at improving compliance with hand hygiene must be based on the various levels of behavior interaction [20,46,74]. Thus, the interdependence of individual factors, environmental constraints, and institutional climate should be considered in strategic planning and development of hand hygiene promotion campaigns.

Factors associated with noncompliance with recommendations are related not only to the individual worker but also to the group to which he or she belongs and, by extension, to the parent institution. Factors influencing compliance at the group level include lack of education and performance feedback; working in critical care (high workload); downsizing and understaffing; and lack of encouragement or role models from key staff. Factors operating at the institutional level include lack of written guidelines; lack of appropriate hand hygiene agents; lack of skin care promotion and agents; lack of hand hygiene facilities; lack of atmosphere of compliance; and lack of administrative leadership, sanctions, rewards, and support. Interventions to promote hand hygiene in hospitals should take into account variables at all these levels.

The complex dynamic of behavioral change involves a combination of education, motivation, and system change. Various psychosocial parameters influencing hand hygiene behavior include intention, attitude toward the behavior, perceived social norms, perceived behavioral control, perceived risk of infection, habits of hand hygiene practices, perceived model roles, perceived knowledge, and motivation [46]. Factors necessary for change include dissatisfaction with the current situation, perception of alternatives, and recognition, both at the individual and institutional level, of the ability and potential to change. While the latter implies education and motivation, the former two necessitate primarily a system change.

Among reasons reported for poor adherence with hand hygiene recommendations, some that are clearly related to the institution (i.e., the system) include lack of institutional priority for hand hygiene, need for administrative sanctions for noncompliance or rewards for compliance, and lack of an institutional climate that encourages safety. Whereas all three reasons would require a system change in most institutions, the last would also involve management commitment, visible safety programs, an acceptable level of work stress, a tolerant and supportive attitude toward reported problems, and belief in the efficacy of preventive strategies [20,46,73,75].

Strategies for Improvement

Improvement in infection control practices requires questioning basic beliefs, continuous assessment of the stage of behavioral change, interventions with an appropriate process of change, and supporting individual and group creativity [46]. Because of the complexity of the process of change, single interventions often fail, and a multimodal, multidisciplinary strategy is necessary.

A framework for change should include parameters to be considered for hand hygiene promotion, together with the level at which each change must be applied: education, motivation, or system. Some parameters are based on epidemiologic evidence and others on the authors' and other investigators' experience and review of current knowledge. Some parameters may be unnecessary in certain circumstances and helpful in others. In particular, changing the hand hygiene agent could be beneficial in institutions or hospital wards with a high workload and a high demand for hand hygiene when waterless hand rub is not available [9,61,62,76]. However, a change in the recommended hand hygiene agent could be deleterious if introduced during winter, when skin is more easily irritated.

Several parameters that could potentially be associated with successful promotion of hand hygiene would require a system change. Enhancing individual and institutional self-efficacy (the judgment of one's capacity to organize and execute actions to reach the objective), obtaining active participation at both levels, and promoting an institutional safety climate represent major challenges that exceed the current perception of the infection control practitioner's role.

More research is needed to determine whether education, individual reinforcement technique, appropriate rewarding, administrative sanction, enhanced self-participation, active involvement of a larger number of organizational leaders, enhanced perception of health threat, self-efficacy, and perceived social pressure [20,46,83,84], or combinations of these factors would improve health-care workers' adherence to recommendations. Ultimately, compliance with hand hygiene could become part of a culture of patient safety in which a set of interdependent elements interact to achieve a shared objective [85].

More readily achievable than major system change, easy and timely access to hand hygiene in a timely fashion and the availability, free of charge, of skin care lotion both appear to be necessary prerequisites for appropriate hand hygiene behavior. In particular, in high-demand situations, such as in critical care units, in high-stress working conditions, and at times of overcrowding or understaffing, having health-care workers use a hand rub with an alcohol-based solution appears as the best method for achieving and maintaining a higher level of compliance with hand hygiene. Alcohol-based hand rub, compared with traditional handwashing with unmedicated soap and water or medicated hand antiseptic agents, may be better because it requires less time [48], acts faster [30], and irritates hands less often [21,30]. This method was used in the only program that reported a sustained improvement in hand hygiene compliance associated with decreased infection rates[63].

Finally, strategies to improve compliance with hand hygiene practices should be multimodal and multidisciplinary (Table 3). It is important to note, however, that the proposed framework for such strategies needs further research before implementation.

Future Research

Among key questions regarding the practices of hand hygiene in the health-care setting today, the following need to be addressed in controlled studies: What are the key determinants of hand hygiene behavior and promotion? Should hand disinfection replace conventional handwashing? What are the best hand hygiene agents? Should hand hygiene solution include a long-lasting compound? What are the most suitable skin emollients to include in hand hygiene solution? How can skin irritation and dryness from hand hygiene agents be reduced? How does skin care protection with hand cream affect the microbiologic efficacy of hand hygiene agents? and What are the key components of hand hygiene agent acceptability by health-care workers?

Additional research questions include - How can researchers generate more definitive scientific evidence for the impact of improved compliance with hand hygiene on infection rates? What is the acceptable level of compliance with hand hygiene (i.e., What percentage increase in hand hygiene results in a predictable risk reduction in infection rates?) and To what extent should the use of gloves be encouraged or discouraged? Finally, recognizing that individual and institutional factors are interdependent in terms of behavioral changes in health-care settings, what is the best way to obtain top management support for hand hygiene promotion? These questions are addressed to infection control practitioners, laboratory research scientists, and behavioral epidemiologists.

The challenge of hand hygiene promotion could be summarized in one question: How can health-care workers' behavior be changed? Tools for change are known; some have been tested, and others need to be tested. Some may prove irrelevant in the future; others have worked in some institutions and need to be tested in others. Infection control professionals should promote and conduct outstanding research and provide solutions to improve health-care worker adherence with hand hygiene and enhance patient safety.

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Acknowledgements

The author thanks members of the Infection Control Program at the University of Geneva Hospitals, who have been involved in research and institutional projects related to hand hygiene compliance and promotion since 1993, and Rosemary Sudan for editorial assistance.

Dr. Pittet is Professor of Medicine and Director, Infection Control Program, the University of Geneva Hospitals, Switzerland. He is a member of the Board of Directors of the Society for Healthcare Epidemiology of America, and recipient of the first Ignaz P. Semmelweis award (1999), the Hygiene-Preis des Rudolf Schülke Stiftung, 1999, and the Pfizer Award for Clinical Research 2001.

Address for correspondence: Didier Pittet, Infection Control Program, Department of Internal Medicine, University of Geneva Hospitals, 24, Rue Micheli-du-Crest, 1211 Geneva 14, Switzerland; fax: 41-22-372-3987; e-mail: didier.pittet@hcuge.ch.

Winning the War Against Catheter-Related Infections

Waging war against nosocomial catheter-related infections in the ICU may seem a daunting task. However, the care team of the Weinberg ICU, The Johns Hopkins Hospital, Baltimore, tackles the battle against catheter-related infections with a successful strategy of empowerment, consistency, and education. With the entire staff working as a unit, the fight has gained significant ground. Since June 2003, the care team has had only two catheter-related infections, the fewest for any ICU in The Johns Hopkins Hospital.

“We have clearly raised the bar,” says Donna Prow, RN, BSN, nurse manager of the Weinberg ICU. “As of January 2006, all patient care units have adopted the checklist the Weinberg ICU instituted; it is now a hospital-wide protocol for central line insertion and management. And other hospitals across the U.S. have also adopted the guidelines The Johns Hopkins Hospital pioneered.”

Having proper equipment available is key in the prevention of catheter-related infections, according to Prow. The Weinberg ICU staff maintains a complete and mobile catheter insertion cart within the unit. The cart is restocked every four hours with everything needed to insert any type of arterial or central-venous line, including single, double, and triple-lumen catheters; dialysis catheters; Swan-Ganz lines; and sterile draping and gowning equipment. The accessibility of the catheter-insertion cart helps the staff maintain strict sterile technique.

“Everything needed is right at hand, so you do not have to interrupt the setting up of sterile fields to leave the room and get additional supplies,” says Prow. Anyone present during insertion and replacement procedures is outfitted in full barrier protection, including sterile gowns and caps. Direct, hands-on care requires wearing sterile gloves as well; others don
non-sterile gloves unless asked to directly assist in the procedure.

To reduce the risk of introducing bacteria into the field, complete sterile draping of the patient is also important. “The patient is always covered with a sterile sheet from head to toe,” says Prow.

Ensuring staff have proper protection and equipment is only a part of the strategy in the campaign against catheter-related infections. Prow also credits the success to the nurses’ consistent use of a simple procedural checklist. The checklist includes reminders to wash hands, correctly position the patient, sterilize the procedure site, properly drape the patient and maintain a sterile field, and use a sterile site dressing. Most important, there is a place to document the corrections taken when sterile technique is breached.

Initially nurses were skeptical about the effectiveness of implementing the checklist. They knew that enforcing a code of strict sterile technique without the full support and cooperation of the attending physicians would be difficult; however, the physicians were willing and have empowered nurses to carry out the standards on the checklist.

“The nurses have the authority to say, ‘Stop! Sterile technique has been broken, and we are going to start over again,’“ explains Prow.

In addition to supportive physicians, the unit boasts the advantages of a consistent RN staffing pattern and the skills of five acute-care NPs as well. The NPs perform about one third of the central-line insertion procedures, and Prow views them as an additional boon in the defense against catheter-related infections.

Maintaining consistency also means that new recruits to the unit quickly learn the catheter-insertion drill. Resident physicians, who insert catheters under the supervision of the fellow physician, arrive monthly. On their first day on the unit, an NP or nurse manager ensures their basic training and orients them to the cart, the checklist, and the procedures.

Another way to reduce catheter-related infections is the quick replacement of catheters inserted during an emergency. With these catheters, such as those inserted in the field or the ED, sterile technique may have been compromised because of the patient’s emergent condition. Education plays a major role in minimizing resistance from patients who may dread facing another major invasive procedure.

“Patients are generally willing to consent to have catheters reinserted once they understand the reasons,” says Prow. Physicians have also been very willing to reinsert these catheters.

Other important procedures include the timing and technique of tubing changes. Per protocol, tubing is changed every 96 hours and is never changed near the insertion site. Adapters keep any opening of the closed sterile system as far away from the insertion site as possible. Insertion site dressing changes are also performed as sterile procedures with the use of both sterile fields and sterile gloves.

Even prior to insertion of a catheter, careful thought is given to the possible risk of future infection. “Important decision-making happens at the time of catheter insertion,“ says Prow. “The best option is always to use a single-lumen catheter if there clearly is not a need for a multi-lumen catheter. When you add another lumen, you add another potential port of entry for bacteria.”

In addition, patients are not discharged from the ICU with central lines in place unless absolutely necessary. If continuation of a central line is deemed essential to a patient’s care, the line is not capped or locked but retains a dedicated IV fluid line.

Waging war against catheter-related infections may seem like an uphill battle; however, Prow attributes much of the success of their program to the commitment of a consistent and empowered staff who work diligently to carry out proper procedures from start to finish.


Catherine Spader, RN, is a freelance writer for Nursing Spectrum.

Safer Surgery - Standardized Practice Improves Patient Outcomes

Two North Carolina hospitals are continuing to make strides in their quality-of-care initiatives to standardize practice to prevent surgical site infections (SSIs) and improve surgical care safety.

Moses Cone Health System in Greensboro, N.C., and CaroMont Health in Gastonia, N.C., are focusing on evidence-based practices outlined by the Institute for Healthcare Improvement (IHI) to get a better handle on normothermia, antibiotic administration, glucose control, hair removal, and more, which target areas where the incidence and cost of complications of SSIs are high. This focus comes as the pressure mounts for hospitals to reveal their rates of hospital-acquired infections and other preventable errors.

In 2003, the Centers for Medicare & Medicaid Services and the CDC initiated the Surgical Care Improvement Project (SCIP), a national quality partnership of organizations committed to improving the safety of surgical care through the reduction of postoperative complications.

SCIP was initiated because of the high toll SSIs take on patients and finances. SSIs account for 14% to 16% of all hospital-acquired infections and are among the most common complications of care. SSIs occur in 2% to 5% of patients after clean extra-abdominal operations and in about 20% of patients who undergo intra-abdominal procedures. Hospitals that participate in SCIP could see savings of about $3,152 per patient and a reduction in length of stay by seven days for patients who develop SSIs, according to the Sept. 14, 2004, article “Making Surgery Safer Project Overview.”

After implementing components of the collaborative to reduce SSIs – part of the IHI’s 100k Lives Campaign - Moses Cone Health System reduced its SSI rates.

The cornerstone of the collaborative is to infuse the appropriate preventative antibiotic within 60 minutes prior to incision. When nurse anesthetists began running antibiotics while preparing patients for the OR, it improved Moses Cone’s compliance within a one-hour time frame from 50% to more than 80%, according to Marion Martin, RN, MSN, MBA, patient safety officer at Moses Cone Health System.

Moses Cone staff has also implemented maintenance of normothermia preoperatively, intraoperatively, and postoperatively as well as skin prep with an electric clipper instead of a razor.

“Doing away with razors, thought to be the hardest to accomplish, has turned out to be the simplest. Over 95% of patients receive appropriate hair removal,” Martin says. “Removing the razors from unit supply carts made all the difference.”

Maintaining patient normothermia intraoperatively proved to be one of the biggest challenges. Pre and post-operative normothermia was maintained at well over 80%. Intraoperatively, the rates fell to less than 50%, despite use of warmed blankets and fluids. “Implementation of the Bair Hugger system eliminated the intraop temperature drops,” Martin says.

The goal of the initiative was to double the number of days between infections or double the number of cases between SSIs. While seeing a drop in reported surgical site infections, Moses Cone Health System, like all other hospitals, continues to strive to improve on its methods to collect SSI cases, Martin says.

CaroMont Health is reporting success with SCIP – a program with a goal to reduce surgical complications by 25% by 2010.

For its patients undergoing coronary artery bypass graft, the hospital is almost 100% compliant in administering on-time antibiotics, selecting appropriate prophylactic antibiotics, and discontinuing antibiotics within 24 hours after surgery. The staff has initiated standardized programs for SSIs and other medical issues. They have achieved near 100% compliance for glucose control in cardiac patients and patients with diabetes undergoing noncardiac surgery; proper hair removal; temperature control in patients; perioperative beta blockers for adverse cardiac events; DVT-pulmonary embolism prophylaxis; and ventilator-associated pneumonia, according to Jan Mathews, RN, MPHA/ MBA, CPHQ, CNAA, director of clinical performance improvement at CaroMont Health’s Gaston Memorial Hospital.

The CaroMont team has since spread the SCIP initiative to all surgical patients, Mathews says, and normothermia and antibiotic administration were among the easy implementations because SCIP recommendations were already in place. The biggest challenge has been implementing the suggested DVT prophylaxis.

“Not every patient gets pharmacological and nonpharmacological prophylaxis, so, basically, you had to change your practice,” Mathews says. “We implemented an order set that goes on every surgical patient’s chart so that the physicians can address what they’d like to have as far as DVT prophylaxis.” Having the cooperation of a multidisciplinary team of physicians and clinicians, hospital-wide, has been key, Mathews says. Since the hospital started collecting data in July, Gaston Memorial patients have had no SSIs during hospitalization. Mathews says the next step is to look at rates 30 days after hospitalization; they now are determining how to collect that data. Implementing changes designed to eliminate SSIs takes constant monitoring and flexibility, Mathews says. “We call it ‘hard wiring,’ or making changes a part of our everyday care of patients. It takes constant monitoring and change to improve the process".

Excerpts above by Lisette Hilton

Permaguard Invention Fights Spread of Bacteria

Student nurses in Kent and Medway are testing a new type of uniform designed to help in the fight against the hospital superbug MRSA. The fabric contains an anti-microbial treatment which "electrocutes" harmful bacteria to stop them spreading. Canterbury Christ Church University believes it is the first in the UK to trial the product, called Permagard.

It is a new antimicrobial finish that controls the growth of bacteria. It can be applied to a wide range of fabrics and surfaces and is intended for use in the food, healthcare and pharmaceutical industries. Unlike most antimicrobial products it does not rely on the slow release of a poison to kill the bacteria but utilises a mechanism that penetrates the cell wall and on contact destroys them.

There are two sorts of antimicrobial agent - the migrating and the non-migrating. Migrating antimicrobials create a zone of inhibition in order to affect as much bacteria as possible. However, some of the bacteria in this zone are not always killed outright and can learn to survive and recover, and therefore build up a resistance to the antimicrobial used.

Permagard is a non-migrating antimicrobial and as explained above uses a physical kill method. It breaks the cell wall and kills the bacteria outright. As it does not create a zone of inhibition but kills only what comes into contact with it, no bacteria can learn to recover from it.

Field trails followed by microbiological testing have shown that Permagard is still effective after 100 washes @ 85ºC. Its performance has also been evaluated and verified by the Hospital Infection Control Research Laboratory of the Birmingham City Hospital NHS Trust, UK.

Hospital acquired infections have attained much greater public awareness in recent times and a somewhat notorious reputation because of the emergence of species of micro-organisms, in particular MRSA, which have become resistant to antibiotics. Figures issued by the National Audit Office report that 100,000 infections a year are acquired in hospitals in the UK equating to 1 in 10 patients. All this at a cost of £1 billion to the UK NHS.

Recognizing the need for an anti-microbial product that is effective and durable, Carrington Career & Workwear Ltd, the UK's largest supplier of healthcare fabrics has developed Permagard to help in the fight against hospital acquired infections.

It is effective against MRSA. In addition, it provides effective control against the growth of a wide range of bacteria, fungi, algae and yeasts. There is no known risk of bacterial mutation with Permagard. Because it destroys bacteria by physical rather than chemical means it will not cause the bacteria to adapt and become resistant to it.

It protects both the wearer and the patient. The moist warm environment in a fabric worn next to the skin is a good breeding ground for bacteria. These can transfer from person to person and from patient to healthcare worker. Such hospital acquired bacteria can than be transferred to the home environment as healthcare uniforms are usually worn to and from work and washed domestically. Treated uniforms will aid in the prevention of such transfer.