Abstract
Genomics research provides an unprecedented opportunity for us to probe into the pathogenicity and evolution of the world's most deadly pathogenic bacterium, Yersinia pestis, in minute detail. In our present work, extensive microarray analysis in conjunction with PCR validation revealed that there are considerable genome dynamics, due to gene acquisition and loss, in natural populations of Y. pestis. We established a genomotyping system to group homologous isolates of Y. pestis, based on profiling or gene acquisition and loss in their genomes, and then drew an outline of parallel microevolution of the Y. pestis genome. The acquisition of a number of genomic islands and plasmids most likely induced Y. pestis to evolve rapidly from Yersinia pseudotuberculosis to a new, deadly pathogen. Horizontal gene acquisition also plays a key role in the dramatic evolutionary segregation of Y. pestis lineages (biovars and genomovars). In contrast to selective genome expansion by gene acquisition, genome reduction occurs in Y. pestis through the loss of DNA regions. We also theorized about the links between niche adaptation and genome microevolution. The transmission, colonization, and expansion of Y. pestis in the natural foci of endemic plague are parallel and directional and involve gradual adaptation to the complex of interactions between the environment, the hosts, and the pathogen itself. These adaptations are based on the natural selections against the accumulation of genetic changes within genome. Our data strongly support that the modern plague originated from Yunnan Province in China, due to the arising of biovar orientalis from biovar antiqua rather than mediaevalis.
MeSH Terms
Adaptation, Physiological
Animals
Bacterial Proteins/genetics
Disease Reservoirs
Ecosystem
Evolution, Molecular
Genome, Bacterial
Genomic Islands
Genomics
Humans
Oligonucleotide Array Sequence Analysis/methods
Polymerase Chain Reaction/methods
Rodentia/microbiology
Yersinia pestis/classification,genetics,growth & development,pathogenicity
Yersinia pseudotuberculosis/genetics
Chemicals
Bacterial Proteins
Authors & Affiliations
21 authors, click to expand affiliations / ORCID
Zhou Dongsheng
Laboratory of Analytical Microbiology, National Centre for Biomedical Analysis, Army Center for Microbial Detection and Research, Institute of Microbiology and Epidemiology, Academy of Military Medical Sciences, Beijing 100071, China.
Han Yanping
Song Yajun
Tong Zongzhong
Wang Jin
Guo Zhaobiao
Pei Decui
Pang Xin
Zhai Junhui
Li Min
Cui Baizhong
Qi Zhizhen
Jin Lixia
Dai Ruixia
Du Zongmin
Bao Jingyue
Zhang Xiuqing
Yu Jun
Wang Jian
Huang Peitang
Yang Ruifu
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