Genomic plasticity of Acidithiobacillus caldus SM-1 at different temperatures
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    Abstract:

    [Objective] The aim of this study is to gain the acclimated strain of Acidithiobacillus caldus SM-1 with high activity when growing at the temperatures below the optimum, and elaborate its genomic plasticity and adaptation at different temperatures.[Methods] Strains were incubated at 37℃, 40℃ and 45℃. We used 454 genome resequencing technology to find the single nucleotide mutant sites in genome. The genes including mutant sites were studied to understand their relationship with the temperature adaptation.[Results] By long-term breeding, we obtained strains with higher viability than unacclimated strain at temperatures (37℃), which is lower than initial optimum growth temperature (45℃). Resequencing results showed the genome of SM-1 with high plasticity. In the genome of different strains (incubated at 37℃, 40℃ and 45℃), 418, 384 and 347 single nucleotide mutation sites were accumulated, respectively. Among them, 20 mutant sites were commonly occurred in the three strains. The genes they affected are involved in heavy metals and toxic resistance system, DNA methylation and protein acylation, and nucleic acid metabolism. In comparison, the specific mutations of the strains, grown at the 37℃ and 40℃, were related to energy metabolism, signal transduction and DNA/RNA stability. Three genes contained mutant sites are common in L37 and M40, of which, Atc_1031 and Atc_1623 encode proteins related to transposon insertion, Atc_1130 encodes a hypothetical protein that is similar to the out membrane protein assembly factor B or the disulfide bond formation protein with 23% and 35% similarity. In addition, some single nucleotide mutations cause the amino acid changes of the related proteins during the adaption.[Conclusion] The genome of At. caldus SM-1 showed highly plasticity at different temperatures. The study provided a set of genomic data for understanding the temperature adaptability molecular mechanism of microorganisms. The study revealed that At. caldus SM-1 evolved to fit lower temperature through multiple pathways, not only by the general environment adaptation mechanism of microorganism, but also by the specific pathway of the strain.

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    [11] Russell RJM, Gerike U, Danson MJ, Hough DW, Taylor GL. Structura畬挠污敤楡捰?慡捴楩摯?晳爠潯浦?浴楨捥爠潣?潬牤札慡湣楴獩浶獥???潴畲牡湴慥氠?潹普??潡汳敥挠畦汲慯牭??楮漠汁潮杴祡?????ㄠ????????ね???????扴牵?孥水?崱??漸測攠猶?倳??″?爱愭栳?刱??呢慲显畛爱椲?匠剋??坥漠汍昬映敃??偲???乯??朠祔牎愬猠敁???獡?????慙測搠?瑥桬敯?捵潩氠摁?猠桌潯捰步?爭敃獯灲潴湥獺攠?椬渠??獡捺桺敡牲楯据桩椠慍?挬漠汈楥???潥異牥湲愠汈?漬映??慡捧瑥敳爠楓漬氠潋杯祴???????????????????????????扨物?孡??嵯??楙稬甠獌栦椣洲愵′吻???慯瑲慦漠歈愬????佮朦愣琲愲‵夻???湺漠畍攬?削?…匣攲欲椵活楲穥畺?????湩捯牲敤慩獡攠?椬渠?湩敮杧慥瑲椠癁攬?獋畡灧敡牮挠潏椬氠楅湧杯?潯晶?瀠汏愬猠浐楥摴??丠??椬渠??獯捧桩敯牳椠捐栬椠態?捭漠汙椬?敔硣灨潩獧敶摩?瑴潳?捶漠汁搬?獆桬潩捣歫???漠汄敥据畡汲慯爠??椠捇牥潮扯楶潥汳潥朠祍???????????㈠????ㄠ??????扲牴?嬣有社崷※?獥灺愭片穯慭???????㈠???牮搠效測愠獆??偲???潍眬椠敓湡?????敫摯氠楁挬欠楙?????潮氠流敆猬??卡???敯湶攠獍?愬渠摇?灬慹瑳桨睩慮祡猠?晖漬爠??佩?獨畡扲????猬甠扇??晹楳硨慩瑮椠潐湎?椠湇?瑮桯敭?漠扳汥楱杵慥瑮散??捡桮敤洠潦汵楮瑣桴潩慯畮瑡潬琠牧潥灮桯業捩?愠捡楮摡潬灹桳楩汳攠???捴楨摥椠瑯桩楬漭扤慥捧楲污汤畩獮?映敢牡牣潴潥硲楩摵慭渠獏??捩慳牰扩潲湡?晡楮硴慡瑲楣潴湩?楡渮????晵敲牥爠潃潯硭業摵慮湩獣???????椠挲爰漱戳椬漠水漺朲礱??金??ひ?????㈠????扥牲?孍水?嵃?噥慲獮桩楫獯桶瑡?????呙畡瑫敩橭慯?丠??匬琠片敯獬獹?牨敩獮瀠潐湎猬椠癔敩??????扎漮砠?桨敡汰楥捲慯獮敩獮?愠?湯敶睥?灮愠瑧桲睯慷祴?琠潯?攠湅杳楣湨敥敲物?灨汩慡渠瑣?獬瑩爠敡獴猠?瑯潷氠整牥慭湰捥敲???潲略牳渮愠汎?潴晵?健栠潂瑩潯捴桥散浨楮獯瑬牯祧?愬渠搲‰倰栳漬琠漲戱椨漱氱漩机礱′???椱漲氶漷朮礼??资せ??????????ㄠ?????っ??扲物?孧㈠?嵌?圠慗瑩慥湧慥扳敨?呦???漬樠楇浲慡?????甠歐界椬?????牨慩晥瑬??敁渮漠浃敯?獤攭煩畮敤湵捣敥?漠晰?慴?灴獩祶捥栠牄潅瑁潄氠敢牯慸渠瑒?獁甠汨晥畬物?潡硳楥摳椠穃楳湨杁?扡慮捤琠敃牳楨畂洠??卥甠汥晳畳牥楮捴敩污汬愠?摯敲渠楣瑯牬楤映楡捤慡湰獴?獴歩?????慤渠摩?灴牥潲瑡散潴洠楷捩?楨渠獣楯杬桤琠獳?楯湣瑫漠?捲潯汴摥?慮搠慂瀠瑩慮琠楂潡湣???灵灳氠汳極敢摴?慬湩摳??湊癯極牲潮湡浬攠湯瑦愠求??楴捥牲潩扯楬潯汧潹本礠?‰日??㈠?????ㄩ??????????????戱爵?嬠至?嵩??慡穬穡潰湡?剩删???態湩杲???卍???牓慨穩?噡卪???愮爠煒畯敬獥??噦???桭慢牲慡据瑥攠牬楩穰慩瑤椠潦湡?潴晹??慣畩汤潳戠慩据琠散牯?捤爠敡獤捡数湴瑡畴獩?牮攮猠灃潥湬獬敵?瑡潲?污潮睤?瑍敯浬灥散牵慬瑡畲爠敂?慯湬摯?楹搬攠渲琰椰昴椬挠愵琰椨漵温?漶昳?札收渴攲献?楢湲瘾潛氱瘶敝搠?楡湮?晥特攠敐穈椮渠杏?牧敡獮楩獣琠慯湳捭敯?????匠??椠捣牯潭扰楡潴汩潢杬祥??敭瑥瑴敡牢獯????ち???????????????????扴牯?孲??嵥??敡瑮灴慳氠汩祮?剨偩剧??副敳摭摯祬??噩????潮浤瀠慯牴慨瑥楲瘠敳?灲牥潳瑳敥潳洮攠?慯湵慲汮祡獬椠獯?漠晅?灰獥祲捩桭牥潮灴桡楬氠楂捩?癬敯牧獹甬猠′洰攰猵漬瀠栲椰永椨挱‵戩愺挲琸攱爹椭愲永″猰瀮攼换楲放獛?椷湝猠楋条桮瑤獲?楲渠瑏漬?瑄桥敌?浯潮氠敁挬甠汇慯牬?扢慥獲楧猠?潌昮?捔潲汥摨?慬摯慳灥琠慳瑹楮潴湨?潳晩?瀠物潳琠敩楮湤獵???????敮渠潥浸楰捯獳????は????っ?????扨物?嬠??嵬??牴灯椠杣湯祬??????敩汳氠敥牳?????敡牬搠慦祯?????汢潩湬楩湴杹??獴攠煬畯敷渠捴敥?慰湥摲?獴瑵牲略捳琮甠牐慲汯?晥敥慤瑩畮牧敳猠?潦映?慨?氠楎灡慴獩敯?晡牬漠流?瑡桤敥?慹渠瑯慦爠捓瑣楩捥?晣慥挠畯汦琠慴瑨楥瘠敕?灩獴祥捤栠牓潴灡桴楥汳攠?偦猠祁捭桥牲潩扣慡挬琠攲爰‰椲洬洠漹戹椨氱椵猩???????椷漳挲栮椼浢楲挾慛?攸瑝??楨潡灮桧礠獍楊挬愠??捡瑮慧????????攠湘教?匠瑌物畵挠瑓畊爮攠?慯湮摳??硵灣牴敩獯獮椠潡湮?????????????????????????扳牳?孯??嵶??慴汯汲戠敦牲杯??????楮湥摷猠瑰牬??????浰??????桯慦爠慁捣瑩敤物楴穨慩瑯楢潡湣?潬晬?味栠楣潡扬慤捵楳氮氠畁獰?捬慬汩摥畤猠?獩灣??湢潩癯???慹?浡潮摤攠牂慩瑯整汥祣?瑮桯敬牯浧潹瀬栠椲氰椱挴?愠挹椸搨漹瀩栺椴氰攸???椰挹爴漮戼楢潲氾潛朱礹????????ㄠ????㈠?????????????戠牴?孥㈠?嵳??捡畴??????愠????????????爀搀攀渀愀猀??倀???漀瘀愀爀爀甀戀椀愀猀?倀????愀爀椀猀琀漀礀??????氀漀爀攀猀?刀??一甀??????攀稀????刀椀愀搀椀????匀栀洀愀爀礀愀栀甀????嘀愀氀搀??????猀?????漀瀀猀漀渀????刀愀眀氀椀渀最猀??????愀渀昀椀攀氀搀??????漀氀洀攀猀??匀??儀甀愀琀爀椀渀椀?刀???爀挀栀椀琀攀挀琀甀爀攀?愀渀搀?最攀渀攀?爀攀瀀攀爀琀漀椀爀攀?漀昀?琀栀攀?昀氀攀砀椀戀氀攀?最攀渀漀洀攀?漀昀?琀栀攀?攀砀琀爀攀洀攀?愀挀椀搀漀瀀栀椀氀攀??挀椀搀椀琀栀椀漀戀愀挀椀氀氀甀猀?挀愀氀搀甀猀??倀?漀匀?伀渀攀??? ??????????攀??????攀???????戀爀?嬀? 崀?吀爀愀瘀椀猀愀渀礀?????漀爀琀??????猀??倀???愀琀漀爀爀攀?????椀??攀渀漀瘀愀?????甀搀椀渀椀挀栀?????漀戀愀搀椀氀氀愀??愀稀稀椀渀椀?刀???倀愀爀愀搀愀?倀???漀渀稀??????氀攀稀?????愀愀猀猀??????渀攀眀?最攀渀漀洀攀?漀昀??挀椀搀椀琀栀椀漀戀愀挀椀氀氀甀猀?琀栀椀漀漀砀椀搀愀渀猀?瀀爀漀瘀椀搀攀猀?椀渀猀椀最栀琀猀?椀渀琀漀?愀搀愀瀀琀愀琀椀漀渀?琀漀?愀?戀椀漀氀攀愀挀栀椀渀最?攀渀瘀椀爀漀渀洀攀渀琀??刀攀猀攀愀爀挀栀?椀渀??椀挀爀漀戀椀漀氀漀最礀??? ????????????????????戀爀?嬀??崀??漀琀琀攀猀??????爀攀搀搀漀氀椀渀漀?倀????栀愀爀攀?????漀渀渀攀氀氀?娀一???椀甀?????吀愀瘀愀稀漀椀攀?匀???愀挀琀攀爀椀愀氀?愀搀愀瀀琀愀琀椀漀渀?琀栀爀漀甀最栀?氀漀猀猀?漀昀?昀甀渀挀琀椀漀渀??倀?漀匀??攀渀攀琀椀挀猀??? ?????????攀?  ??????戀爀?嬀??崀??甀爀愀琀愀?????甀樀椀洀漀琀漀????一椀猀栀椀洀甀爀愀?????栀愀爀漀攀渀猀甀欀????一愀最愀洀椀琀猀甀????刀愀椀渀愀?匀???漀猀愀欀愀?吀??伀猀栀椀洀愀?吀??伀最愀猀愀眀愀爀愀?一??夀愀洀愀搀愀?????漀氀攀挀甀氀愀爀?猀琀爀愀琀攀最礀?昀漀爀?猀甀爀瘀椀瘀愀氀?愀琀?愀?挀爀椀琀椀挀愀氀?椀最栀?吀攀洀瀀攀爀愀琀甀爀攀?椀渀??猀挀栀椀攀爀椀挀栀椀愀?挀漀氀椀??倀?漀匀?伀渀攀??? ?????????攀?  ???
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Xiaojing Li, Jiangbao ta&#;Mahadesi, Lan Yang, Huajun Zheng, Tangjian Peng, Xu Zhang, Chengying Jiang, Shuangjiang Li. Genomic plasticity of Acidithiobacillus caldus SM-1 at different temperatures. [J]. Acta Microbiologica Sinica, 2017, 57(7): 1083-1094

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  • Received:October 31,2016
  • Revised:December 09,2016
  • Online: July 07,2017
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