jueves, 30 de noviembre de 2017

New approach can track how superbugs travel among and within health care facilities

New approach can track how superbugs travel among and within health care facilities

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New approach can track how superbugs travel among and within health care facilities

Killer bacteria – ones that have out-evolved our best antibiotics -- may not go away anytime soon. But a new approach to tracking their spread could eventually give us a fighting chance to keep their death toll down.
Using data from a 2008 outbreak of one of the most-feared "superbugs," and modern genetic sequencing techniques, a team has successfully modeled, and predicted, the way the organism spread between and within dozens of healthcare facilities.
The approach can tell if the bug is spreading within a hospital, nursing home or long-term acute care hospital – or if a new patient transferred from another facility has brought it there.
In other words, if fighting superbugs is like a horror movie, the approach can tell if the call is coming from inside the house, or if the killer is lurking outside and about to barge through the door.
And just like in a horror movie, getting an answer quickly can guide what kinds of barricades and weapons health professionals should use against the villain.
The approach, published in Science Translational Medicine, combines current epidemiological approaches with whole-genome sequencing – spelling out the entire DNA sequence of bacteria from each infected patient.
This makes it possible to use the tiny changes in superbug DNA – the kind of mutations that happen naturally over time -- to track their spread within and between healthcare facilities.
The approach was developed by teams from Rush University Medical Center in Chicago and the University of Michigan Medical School, with funding from the federal Centers for Disease Control and Prevention's Prevention Epicenters Program. The teams used data on a 2008 outbreak of carbapenem-resistant Klebsiella pneumonia (CRKP) in the upper Midwest.
"These organisms permeate regions, but it hasn't been understood in detail how that happens – why they spread like wildfire in one region and don't make headway in another," says Evan Snitkin, Ph.D., a U-M assistant professor specializing in bioinformatics and systems biology. "Because this was the first outbreak of CRKP in the Chicago region, we decided to try to trace its initial movements based on patient transfers and whole-genome sequencing of samples. If we can understand what drives transmission in a region, we hope to be able to intervene to prevent further spread."
Back in time
Rush's hospital identified the second case of CRKP in the region. The hospital team identified the outbreak after a patient arrived at their emergency department in a transfer from an acute care hospital in Indiana.
A team led by Mary K. Hayden, M.D., an infectious diseases physician who also directs Rush's Division of Clinical Microbiology, conducted and published its own investigation of the outbreak, using the best techniques available at the time. They concluded that the bug had spread from a single patient in mid-2007, and eventually infected 42 people treated in 14 acute care hospitals, two LTACHs, and 10 nursing homes.
Transfers of patients among these facilities – for example, from an LTACH or nursing to a hospital for short-term acute care, and then back again – was identified as a major driver of spread. A single LTACH was identified as a key hub for transmission.
In this outbreak, many patients died. Nationwide, death rates for CRKP are even higher, and it tends to prey upon the sickest, most vulnerable patients.
Old samples, new analysis
Back in 2008, whole-genome sequencing of this many samples was not feasible.
"Although our research fellow at the time, Dr. Sarah Won, conducted an exhaustive outbreak investigation, the molecular epidemiologic tools available in 2008 did not allow us to determine timing and direction of spread for many cases," says Hayden. "We saved the isolates with the hope that more discriminating techniques would be available in the future. We were very excited when the future arrived!"
The Rush team brought the samples to U-M's Center for Microbial Systems for sequencing, and Snitkin's team started to put the genome data together with what Hayden's team had found out about the outbreak. This included something that hadn't been available before the original outbreak report: clinical data on 'patient zero,' the person whose infection with CRKP dated back to mid-2007, and who Hayden's team had previously identified as the origin of the outbreak.
This allowed the team to create a 'family tree' of the CRKP outbreak, back to that first patient on the trunk. They mapped the spread from patient to patient, and facility to facility, based on both the sleuthwork Hayden's team had done and the new genomic sequence information.
They could see which cases had resulted from transmission within the facility – because of practices that allowed bacteria from the infected patient to reach others – and which had been introduced because a patient was transferred with the bacteria already inside them.
Then, they tested the approach by trying to predict which facility each patient's CRKP infection had come from, using only the genomes of the other patients already treated in the outbreak – and none of the information from patients treated later.
This real-time analysis, similar to what might happen in a real outbreak, successfully pinpointed the facility where the infection came from for every patient.
"The genome sequence is powerful for finding pathways, but having epidemiological data about exposures and movement between facilities makes everything make sense," says Snitkin, who holds positions in the U-M Medical School's departments of Microbiology & Immunology and Internal Medicine. "We envision that we will be able to use this same approach on other organisms, too, though efficacy will vary."
Adds Hayden, "This approach might be particularly useful in identifying pathways of transmission soon after emergence of a superbug in a region. The earlier we can intervene to contain an outbreak, the more likely it is that we can eradicate it."
The complementary expertise of the Michigan and Rush teams made the project possible, he adds. Going forward, the team hopes to test the approach in other settings, to see if they can find the hubs of antibiotic-resistant bacteria development and transmission.
They also will test the approach for its ability to trace the origin of transmission for an organism that's already present in an area. This could be much harder than tracking a newly introduced type of infection that has just entered a region.
The role of LTACH's, where patients may live for months at a time receiving hospital-level care such as constant ventilation, is one they also hope to explore further. Such facilities may be especially prone to the development of antibiotic-resistant organisms simply because of the kind of care they provide to a very vulnerable and immobile population with weak immune systems.
In the long run, the researchers hope their approach could be adapted broadly by public health authorities and infection control specialists in healthcare facilities – and used to steer interventions very early in an outbreak to prevent transmission across broad networks.
To get to that point will require the development of public-domain software for public health disease detectives to use routinely, or even to automate the process.

3D folding of DNA during cardiomyocyte differentiation provides vital epigenetic mechanisms, study says

3D folding of DNA during cardiomyocyte differentiation provides vital epigenetic mechanisms, study says

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3D folding of DNA during cardiomyocyte differentiation provides vital epigenetic mechanisms, study says

A new study conducted at the University of Freiburg suggests that three-dimensional (3D) folding of the DNA reorganizes itself during differentiation of pluripotent stem cells to cardiomyocytes.
Credit: Egorov Artem/ Shutterstock.com
According to Dr. Ralf Gilsbach and Stephan Nothjunge who led the study, this reorganization precedes and explains vital epigenetic patterns.
The study, published in the scientific journal Nature Communications, indicated that the spatial organization of the genome is a vital switch for defining cell types, and can thereby symbolize a very promising start for reprogramming strategies in the future.
Information on the development of an organism is stored in the genome. This information is carried by each cell in the DNA strand, which is closely packed within the nucleus of the cell. Access to the ‘blueprint of life’ is controlled by specific epigenetic mechanisms. The epigenome is a key factor to determine the cellular identity, as each cell type in a mammalian organism needs access to genomic areas in a tempo-spatial specific method.
Association of numerous epigenetic mechanisms with cell differentiation was previously known, in which the methylation of DNA is indispensable; here, the methyl groups are attached to specific nucleotides inside double-stranded DNA.
Even though recent studies have indicated differentiation processes as accompanied by a reorganization of the 3D folding of the DNA, the order of the mechanisms—DNA methylation and reorganization of DNA folding in the cellular nucleus—during cardiomyocyte differentiation remained unclear. The scientists were also unclear if these mechanisms were interdependent.
The researchers of the current study, in order to address this question, made use of modern sequencing methods that enabled mapping of 3D genome organization and epigenetic mechanisms during cardiomyocyte differentiation throughout the genome.
In the study, the researchers implemented methods for isolation of cardiomyocytes in several developmental stages from the hearts of healthy mice. The comparison of these stages showed that the type of spatial folding of DNA determines the pattern of methylation formed and the genes to be activated.
According to the findings, the DNA’s spatial arrangement is independent of DNA methylation with cells, when compared with those stages that lack DNA methylation. The 3D genome organization is thus considered as an essential switch to determine cellular identity.
The researchers further aim to use this switch to control cellular functions.

Family risk for childhood asthma may involve microbes found in baby's digestive tract

Family risk for childhood asthma may involve microbes found in baby's digestive tract

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Family risk for childhood asthma may involve microbes found in baby's digestive tract

A new University of Alberta study shows that the family risk for asthma--typically passed from moms to babies--may not be a result of genetics alone: it may also involve the microbes found in a baby's digestive tract.
AllerGen investigator and UAlberta microbiome epidemiologist Anita Kozyrskyj led a research team that found that Caucasian baby boys born to pregnant moms with asthma--who are typically at the highest risk for developing asthma in early childhood--were also one-third as likely to have a gut microbiome with specific characteristics at three to four months of age.
"We saw a significant reduction in the family of microbes called Lactobacillus in Caucasian baby boys born to pregnant women who had asthma, and this was especially evident if the asthmatic mother had allergies or was overweight," said Kozyrskyj, senior author of the study and one of the world's leading researchers on the gut microbiome--the community of microorganisms or bacteria that live in the digestive tracts of humans.
These findings provide the first evidence that maternal asthma during pregnancy may be associated with changes in an infant's gut microbes, according to Kozyrskyj.
"Our discovery, with more research, could eventually lead to a preventative approach involving modifying the gut microbiome in infants to reduce the risk," she explained.
She also cautioned, however, that it is too early for parents to be seeking probiotic treatments for their infants to address this particular concern.
Kozyrskyj and her team's research involved over 1,000 mothers and their infants participating in AllerGen's CHILD Study, a national population-based birth cohort.
Kozyrskyj said that she and her team were motivated to study the gut microbiome-asthma link by the well-established fact that maternal asthma affects infant birth weight in a sex-specific manner.
"The Caucasian male fetus is more likely to have a lower birth weight in response to maternal asthma, so we knew there were already sex-based differences occurring and we decided to study them further."
The study also found that maternal asthma had an impact on the gut bacterial profile of baby girls, but in a different way.
"Baby girls were more likely to have higher amounts of bacteria in the Bacteroidaceae family, which are important for maintaining the mucus barrier that protects gut cells from damage by harmful substances," said Kozyrskyj.
"We speculate that this may protect baby girls from developing asthma in early life. On the other hand, changes to bacterial composition specific to baby girls may increase their risk for developing asthma during puberty, when the gender switch in asthma occurs."
"Given emerging research linking the gut microbiome to asthma and allergies, we are excited that our results have uncovered a new finding that may eventually contribute to the prevention of childhood asthma."

New pluripotent stem cell technology provides insights into neuropsychiatric disorders

New pluripotent stem cell technology provides insights into neuropsychiatric disorders

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New pluripotent stem cell technology provides insights into neuropsychiatric disorders

Studying the genetic code allows researchers to know whether some patients with neuropsychiatric disorders either have extra copies of the CHRNA7 gene or are missing copies. However, little was known about the functional consequences of this genetic imbalance in brain cells.
"For several years we have been studying patients with these conditions in different ways and also worked with mouse models in my lab. In this study we used a new pluripotent stem cell technology to pose questions that could not be answered with the other approaches," said corresponding author Dr. Christian Schaaf, assistant professor of molecular and human genetics at Baylor College of Medicine and the Joan and Stanford Alexander Endowed Chair for Neuropsychiatric Genetics at Texas Children's Hospital.
Pluripotent stem cell technology helps better understand neuropsychiatric disorders
"Pluripotent stem cell technology has allowed us to study what happens inside human brain cells from patients that have either fewer or extra copies of the CHRNA7 gene," said first author Dr. Madelyn Gillentine, a recent Ph.D. graduate of the Schaaf Lab. "In summary, we take skin biopsies from patients with these conditions, grow the cells in culture in the lab and reprogram them to become brain cells. Using this approach, we gained insights into the mechanisms of disease at the neuronal level, which were really surprising."
The CHRNA7 gene is translated into CHRNA7 proteins that form a channel on the cell membrane that allows calcium to enter the cells. By regulating calcium levels, the CHRNA7 gene plays an important role on how neurons communicate and function with each other.
"We would have predicted that, compared with neurons from normal individuals, neurons from patients with fewer copies of this gene would show decrease in calcium flux, and those from patients who have extra copies would have more calcium flux, because they have more copies of this gene and are making more of the protein," Schaaf said.
As expected, the researchers found that neurons with fewer copies of the gene show a reduction in calcium flux, almost half of what they see in control samples, which they expect will have functional consequences on neuronal functioning in those patients.
"On the other hand, we were very surprised when we saw that neurons with extra copies of the gene, instead of an increase, they also showed a decrease in calcium flux that was not as severe as the one in the neurons with fewer copies of the gene," Gillentine said.
These results provide insights into why the patients with fewer copies of the gene share clinical characteristics with the patients with extra copies of the gene, despite having opposite underlying genetic makeup. In both cases, the result of the genetic imbalance is a decrease in calcium flux in the neurons. Clinically, while the patients with fewer copies present with moderate to severe cognitive impairment, high prevalence of autism and other neuropsychiatric problems, those with extra copies present with similar but less severe characteristics.
Opposite genetic imbalance results in similar biological effect mediated by different mechanisms
In the case of neurons with fewer copies of the gene, and therefore fewer CHRNA7 proteins to form calcium channels, the researchers propose that the reduction in calcium flux in the cells results from having fewer calcium channels.
"For the neurons with extra copies of the gene, we found that having extra copies of the gene results in more CHRNA7 proteins, which overwhelms the process that assembles them together, causes cellular stress and disturbs the formation of calcium channels. The result is a reduction of calcium flux in neurons," Schaaf said. "This is an important first step toward better understanding this condition and one day finding treatments that would improve the lives of these patients."

Leishmania adaptation to environmental changes results from frequent chromosomal amplifications

Leishmania adaptation to environmental changes results from frequent chromosomal amplifications



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Leishmania adaptation to environmental changes results from frequent chromosomal amplifications

Leishmaniasis is an important human and veterinary disease caused by Leishmania parasites that affect 12 million people in over 98 endemic countries. The disease is now emerging in Europe due to climate change and massive population displacement. The parasite is known to rapidly adapt to novel environments with important consequences for disease outcome. It has therefore been recognized as an emerging public health threat for the EU.
In a paper, published in Nature Ecology & Evolution, scientists from the Institut Pasteur in Paris and the Centre for Genomic Regulation (CRG) in Barcelona, in collaboration with teams at the Institute of Tropical Medicine Antwerp (ITM) and the University of Montpellier, have now demonstrated that Leishmania adaptation results from frequent and reversible chromosomal amplifications.  Such variations, named aneuploidies, are similar to those occurring in many cancer types.
These findings represent an important step towards a better understanding of human Leishmania infection, with relevance to parasite drug resistance, pathogenicity, and tissue tropism. This novel insight into Leishmania genomic instability should pave the way for the identification of parasite drug resistance mechanisms in clinically relevant settings and help discover biomarkers with diagnostic and prognostic value.
Leishmaniasis is among the five most important parasitic diseases worldwide, with an estimated 350 million people at risk of infection. The disease causes a spectrum of clinical manifestations ranging from disfiguring cutaneous to fatal visceral forms, which results from infection by different species of Leishmania parasites. These unicellular parasites adapt to a remarkable range of hosts. They grow as extracellular parasites inside phlebotomine sand flies that transmit Leishmania to variety of vertebrates, such as rodents, dogs, and humans, where they grow inside immune cells, notably macrophages, causing severe pathologies that may lead to death.
Leishmaniasis is one of the most neglected diseases and as a consequence attracts limited attention. There is no human vaccine and only few treatments are available, all of which show one or more important limitations with respect to administration, toxicity or cost. Even worse, a hallmark of Leishmania biology happens to be its capacity to adapt to a variety of unpredictable fluctuations inside its human host, notably pharmacological interventions, with important consequences on disease outcome as demonstrated by the emergence of drug resistant clinical isolates.
To identify the genetic mechanisms that drive Leishmania genomic adaptation, scientists from the Institut Pasteur in Paris and the Centre for Genomic Regulation (CRG) in Barcelona, in collaboration with teams at the Institute of Tropical Medicine Antwerp (ITM) and the University of Montpellier have developed novel techniques for comparative genomics, based on next generation sequencing and in-silico analyses. Their work, which is published in Nature Ecology and Evolution, shows for the first time the existence in Leishmania of a relation between changes in chromosome copy number and the selection of new alleles important for parasite survival.
The most surprising aspect of this work is the observation that Leishmania manages to combine allele selection with the maintenance of a high genetic diversity. Normally these two processes should be mutually exclusive, and one would expect a parasite under strong selection to rapidly lose its genetic diversity. In Leishmania, however, the very frequent chromosomal duplications make it possible to combine both. Indeed, the parasite maintains its diversity by allowing the same combination of alleles to be selected simultaneously in genetically diverse individuals.
Gerald Späth, Director of the Molecular Parasitology and Signaling Unit at the Institut Pasteur in Paris, who directed the experimental part of this study, comments: "Basic, applied, and clinical research in Leishmania is nearly exclusively conducted using parasites from long-term culture. Our study shows that the parasite genome evolves very fast under laboratory conditions. This needs to be considered when studying the parasite biology and searching for new biomarkers, drugs, or vaccine candidates. The future of Leishmania research should be conducted in a more integrative fashion, considering the complex genetic interactions between parasite, vertebrate host and insect vector, and under clinically relevant conditions, for example using parasites from short-term culture or applying direct tissue sequencing".
Cedric Notredame, Senior Principal Investigator at the Centre for Genomic Regulation in Barcelona, who directed the comparative genomics part of this study explains: "The notion that gene amplification is a highway for adaptation has long been around, but our work shows that in Leishmania, evolution has scaled up this mechanism to the point of making it an essential part of the parasite life cycle. An increasing body of work shows that similarly complex aneuploidy variations play a role in some forms of cancer and we think that the rapid accumulation of NGS genomics data combined with novel in-silico techniques - like the ones developed in our study - will soon lead to a better understanding of the relationships between aneuploidy and allele selection".
Professor Jean-Claude Dujardin from ITM points out: "It took us more than five years to collect an unprecedented sequencing data set from clinical isolates in the Indian sub-continent and publish a first analysis last year. A great feature of modern science is that all sequencing data need to be made public, which allows new collaborations and studies like ours.  It also allowed the establishment of a new alliance between ITM, Institut Pasteur and CRG in the fight against infectious disease."
The results of this original study are highly relevant to other human diseases that dependent on genome instability, such as fungal infection or cancer, and open new venues for anti-leishmanial drug discovery using host-directed strategies that target the parasite's metabolic dependence on the host cell, thus preventing the adaptive evolution of drug resistant parasites.
Based on the results published in this paper, and with the aim to study the biology and epidemiology of Leishmania in a clinically more relevant context, Dr. Gerald Späth established the international consortium 'LeiSHield' (www.leishield.org), that coordinates a concerted effort between partner teams of the Institut Pasteur International Network and beyond, which was initially supported by a seeding fund from the Institut Pasteur International Direction, and is now funded by a 1.7 million euro grant from the EU H2020 program.

Novel discovery connects innate immunity deficiencies to rampant caries in some children

Novel discovery connects innate immunity deficiencies to rampant caries in some children

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Novel discovery connects innate immunity deficiencies to rampant caries in some children

Researchers at Umeå University in Sweden have made a novel discovery connecting genetic innate immunity deficiencies to rampant caries and increased risk of dental caries affecting about one in five children. The results could lead to a better way of identifying high-risk patients and treat their caries. The study has been published in the journal EBioMedicine.
In a five-year study, in which saliva and isolated bacterial strains from a large number of children was analyzed and the dental health monitored, the research group recently established that some high-risk children have a more virulent variant of the caries bacterium Streptococcus mutans. The same research group now shows that high-risk children also have genetic defects in innate and adaptive immunity, making them more vulnerable against oral bacteria and streptococci in general.
"Most people consider caries to be a lifestyle condition caused by bad eating- and oral hygiene routines that lead to acidic pH levels in the mouth, which in turn damage the enamel and promote the colonization of acid-producing bacteria such as S. mutans," says Nicklas Strömberg, professor and Head at the Department of Cariology at Umeå University and Västerbotten County Council, and first author of the article.
"Our results now show that this correlation is accurate for approximately four out of five individuals, who have a small-to-moderate risk of developing caries because their composition of salivary innate immunity proteins make them relatively resistant to caries. However, we have shown that so-called high-risk individuals, which are about one in five individuals, carry a genetically different composition of the same salivary innate immunity proteins, making them highly susceptible to caries independent of eating- or oral hygiene habits or S. mutans-infection."
One in five children in Sweden is considered a high-risk individual when it comes to the risk of developing dental caries. These high-risk individuals do not respond to traditional caries prevention or treatment, and bio markers cannot predict future risk of caries in the group. Chronic caries infection and missing teeth are also risk factors for systemic diseases such as stroke and cardiovascular diseases.
Innate and adaptive immunity deficiencies explain high-risk individuals for caries
A research group led by Nicklas Strömberg have in the current study followed 452 children (between ages 12 and 17) in Västerbotten over a five year period. After genetic analysis of their DNA, the children were divided into various risk groupings based on genetic variation in PRH1 and PRH2, encoding salivary acidic proline-rich proteins. At a five-year follow-up, the researchers could see how caries had developed in the various risk groupings.
The results showed that children with high susceptibility or risk for caries had defective proteins in their saliva. The defective salivary proteins in question were acidic and basic proline-rich proteins and the adhesive protein salivary agglutinin (or DMBT1). According to the researchers, the defective proteins probably fail to mediate the same innate and adaptive immunity responses that serve to protect individuals with small-to-moderate caries risk from the oral bacterial flora.
The researchers describe how allelic variation in PRH1 and PRH2, encoding acidic proline-rich proteins, separate children into different caries susceptibility or risk groupings. As expected, children with a low-to-moderate susceptibility or risk for caries along with a genetically intact set of proteins were found to develop caries from bad eating and oral hygiene routines and S. mutans-infection. However, the children with high susceptibility develop caries independent of eating- or oral hygiene routines or S. mutans-infection but from the immune deficiency. Accordingly, when children were treated with dental braces the high risk children exclusively developed several times more caries after 5 years. The researchers believe this is due to plaque accumulation and impaired saliva flow as a result from the dental braces.
"This new knowledge about genetic susceptibility groupings could be used to improve individualized dental care. Children in the higher risk group could then be diagnosed before caries lesions and symptoms arise. In this way, prevention could be implemented at a young age when caries can be prevented more easily. High-risk children can presently be treated with intensified prevention and in the future we will hopefully be able to use immune-supplementation as a way to strengthen their oral immunity," explains Nicklas Strömberg.
Dental costs, including those pertaining to caries treatment, amount to 5 % of global health care-related costs. Caries is the most common cause for failure of fillings and prosthetic replacements. The ability to detect high-risk individuals early could yield large savings for society and individuals both in terms of suffering and costs.​

Genetic, ethnic background may be underlying factors for acquired laryngotracheal stenosis

Genetic, ethnic background may be underlying factors for acquired laryngotracheal stenosis

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Genetic, ethnic background may be underlying factors for acquired laryngotracheal stenosis

Endotracheal intubation, in which a tube is inserted through the voice box (larynx) into the windpipe, and tracheotomy, in which surgery is undertaken to create a hole through the neck and into the windpipe (trachea) to facilitate breathing, are widely used in the hospital setting for elective surgery and in cases of serious illness or critical injury. In rare instances, however, the procedures result in the development of scarring and narrowing of the larynx and trachea, a condition known as acquired laryngotracheal stenosis (ALTS). Who is susceptible to ALTS - and why - is unclear, but according to new research at the Lewis Katz School of Medicine (LKSOM) at Temple University, genetic and ethnic background may be underlying factors.
"Many efforts have been made to decrease the risk of laryngeal and tracheal scarring through improved materials and techniques," explained Ahmed M.S. Soliman, MD, Professor and Interim Chair of Otolaryngology - Head and Neck Surgery; Director of the Voice, Airway, and Swallowing Center at LKSOM; and senior investigator on the new study. "Still, some patients develop ALTS, and now we realize that genetic differences, specifically those occurring in certain wound-healing genes, may put some patients at greater risk." The new study was published November 22 in the journal Laryngoscope.
ALTS affects an estimated one to eight percent of patients who have an endotracheal or tracheotomy tube placed. While the condition is rarely fatal, patients can develop difficulty breathing, necessitating complex emergency surgery to open the airway. It can also lead to voice and swallowing dysfunction. In some cases, patients require permanent tracheotomy.
"Our hypothesis was that aberrations in wound healing, which are observed in patients with other scarring disorders, are related to ALTS," Dr. Soliman said. Knowing this, Dr. Soliman and colleagues decided to search the DNA of ALTS patients for specific changes in genes associated with scarring and wound healing.
A total of 138 patients were recruited from Temple University Hospital and its associated clinics for the study. Fifty-three of the recruits had ALTS, while the remainder of the patients were controls, individuals who had undergone endotracheal intubation or tracheotomy without scarring. DNA was isolated from each patient's blood and analyzed for the presence of any of six candidate genetic variations in a panel of scar formation and wound-healing genes.
Although none of the overall candidate variations was significantly associated with ALTS, when Dr. Soliman and colleagues carried out subgroup analyses, they found that certain variants were in fact significantly linked to ALTS, depending on ethnic background. The association with stenosis was high particularly for African Americans.
While the findings are preliminary, they pave the way for someday preventing ALTS through genetic testing. "If we know someone is at risk for developing ALTS, we could use alternatives to breathing tubes or use the tubes for only a short period of time, decreasing the chance of scar formation," Dr. Soliman said.
In the near-term, the next step is to confirm the new findings in a larger study, involving about 300 study patients. A multi-institutional trial would likely be needed to obtain this number. Such a large pool of patient data would greatly facilitate research on ALTS and open new avenues of study into genetic aspects of other forms of laryngotracheal stenosis.
"We are particularly interested in using the techniques that we developed to study the genetics of idiopathic stenosis, which has no known cause," Dr. Soliman explained. "The idiopathic condition occurs almost exclusively in women of Northern European descent, suggesting the existence of additional associations between laryngotracheal stenosis and genetic and ethnic background."