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Einhundertvierundvierzig STEC-Stämme von Patienten mit hämolytisch-urämischem Syndrom (68 Stämme), von Durchfallpatienten (42 Stämme) und von asymptomatischen Ausscheidern (44 Stämme) wurden im Rahmen dieser Arbeit auf ihre Antibiotika-empfindlichkeit hin untersucht. Zu den insgesamt 13 getesteten Antibiotika zählten die ß-Laktam Antibiotika Ampicillin, Piperacillin, Cefotaxim, Ceftazidim, Cefotiam und Imipenem, die Aminoglykoside Gentamicin und Streptomycin, die Gyrasehemmer Ofloxacin und Ciprofloxacin sowie Tetracyclin, Chlorampenicol und die Sulfamethoxazol/Trimethoprim-Kombination Cotrimoxazol. Alle E. coli O157 Stämme, die von Patienten mit HUS isoliert wurden, waren sensibel gegen die getesteten Antibiotika. Lediglich ein E. coli O157 Stamm, der von einem Durchfall-Patienten isoliert wurde, zeigte eine Resistenz gegen Tetracyclin. Allgemein häufiger wurden Antibiotikaresistenzen bei non-O157 Stämmen gefunden. Fünf von 22 non-O157 Stämmen, die von HUS-Patienten isolierten wurden, zeigten mindestens eine Resistenz gegen die getesteten Antibiotika. Vierzehn von fünfunddreißig non-O157 E. coli Stämmen, die sowohl von Durchfall-Patienten als auch von asymptomatischen Ausscheidern stammten, konnten sowohl Einfachresistenzen als auch Multiresistenzen aufweisen. Die Bestimmung der minimalen Hemmkonzentration (MHK) zeigte, daß alle resistente Stämme einen extrem hohen Resistenzstatus besitzen. Sowohl ß-Laktam als auch Tetracyclin Resistenzen konnten mittels Konjugation auf einen E. coli-Laborstamm übertragen werden. Dies läßt die Anwesenheit von R-Plasmiden vermuten. Die Tatsache, daß über 12 Prozent Shigatoxin produzierender E. coli Stämme aus humanen Stuhlproben Antibiotikaresistenzen aufweisen, hat klinische und epidemiologische Bedeutung. Resistente STEC-Stämme hätten einen selektiven Vorteil gegenüber anderen koliformen Bakterien in Mastbetrieben, die Antibiotika dem Futtermittel beimengen. Hieraus wiederum steigt die Gefahr einer potentiellen Übertragung resistenter Pathogene auf den Menschen. Auf der anderen Seite könnte die ansteigende Anzahl Antibiotika-resistenter Stämme zu einer rasch durchführbaren epidemiologischen Nachweismethode führen.
Evolution of antifungal drug resistance of the human-pathogenic fungus \(Candida\) \(albicans\)
(2021)
Infections with the opportunistic yeast Candida albicans are frequently treated with the first-line drug fluconazole, which inhibits ergosterol biosynthesis. An alarming problem in clinics is the development of resistances against this azole, especially during long-term treatment of patients. Well-known resistance mechanisms include mutations in the zinc cluster transcription factors (ZnTFs) Mrr1 and Tac1, which cause an overexpression of efflux pump genes, and Upc2, which results in an overexpression of the drug target. C. albicans strains with such gain-of-function mutations (GOF) have an increased drug resistance conferring a selective advantage in the presence of the drug. It was previously shown that this advantage comes with a fitness defect in the absence of the drug. This was observed in different conditions and is presumably caused by a deregulated gene expression.
One aim of the present study was to examine whether C. albicans can overcome the costs of drug resistance by further evolution. Therefore, the relative fitness of clinical isolates with one or a combination of different resistance mutations in Mrr1, Tac1 and/or Upc2 was analyzed in competition with the matched fluconazole-susceptible partner. Most fluconazole-resistant isolates had a decreased fitness in competition with their susceptible partner in vitro in rich medium. In contrast, three fluconazole-resistant strains with Mrr1 resistance mutations did not show a fitness defect in competition with their susceptible partner. In addition, the fitness of four selected clinical isolate pairs was examined in vivo in mouse models of gastrointestinal colonization (GI) and disseminated infection (IV). In the GI model all four fluconazole-resistant strains were outcompeted by their respective susceptible partner. In contrast, in the IV model only one out of four fluconazole-resistant isolates did show a slight fitness defect in competition with its susceptible partner during infection of the kidneys. It can be stated, that in the present work the in vitro fitness did not reflect the in vivo fitness and that the overall fitness was dependent on the tested conditions. In conclusion, C. albicans cannot easily overcome the costs of drug resistance caused by a deregulated gene expression.
In addition to GOFs in Mrr1, Tac1 and Upc2, resistance mutations in the drug target Erg11 are a further key fluconazole resistance mechanism of C. albicans. Clinical isolates often harbor several resistance mechanisms, as the fluconazole resistance level is further increased in strains with a combination of different resistance mutations. In this regard, the question arises of how strains with multiple resistance mechanisms evolve. One possibility is that strains acquire mutations successively. In the present study it was examined whether highly drug-resistant C. albicans strains with multiple resistance mechanisms can evolve by parasexual recombination as another possibility. In a clonal population, cells with individually acquired resistance mutations could combine these advantageous traits by mating. Thereupon selection could act on the mating progeny resulting in even better adapted derivatives.
Therefore, strains heterozygous for a resistance mutation and the mating type locus (MTL) were grown in the presence of fluconazole. Derivatives were isolated, which had become homozygous for the resistance mutation and at the same time for the MTL. This loss of heterozygosity was accompanied by increased drug resistance. In general, strains which are homozygous for one of both MTL configurations (MTLa and MTLα) can switch to the opaque phenotype, which is the mating-competent form of the yeast, and mate with cells of the opposite MTL. In the following, MTLa and MTLα homozygous strains in the opaque phenotype were mated in all possible combinations. The resulting mating products with combined genetic material from both parents did not show an increased drug resistance. Selected products of each mating cross were passaged with stepwise increasing concentrations of fluconazole. The isolated progeny showed high levels of drug resistance and loss of wild-type alleles of resistance-associated genes. In conclusion, selective pressure caused by fluconazole exposure selects for resistance mutations and at the same time induces genomic rearrangements, resulting in mating competence. Therefore, in a clonal population, cells with individually acquired resistance mutations can mate with each other and generate mating products with combined genetic backgrounds. Selection can act on these mating products and highly drug-resistant und thus highly adapted derivatives can evolve as a result.
In summary, the present study contributes to the current understanding of the evolution of antifungal drug resistance by elucidating the effect of resistance mutations on the fitness of the strains in the absence of the drug selection pressure and investigates how highly drug-resistant strains could evolve within a mammalian host.