中国科学院研究生院学报
中國科學院研究生院學報
중국과학원연구생원학보
JOURNAL OF THE GRADUATE SCHOOL OF THE CHINESE ACADEMY OF SCIENCES
2007年
1期
131-136
,共6页
亮氨酰-tRNA合成酶%tRNALeu%氨基酰化反应%编校反应%CP1结构域
亮氨酰-tRNA閤成酶%tRNALeu%氨基酰化反應%編校反應%CP1結構域
량안선-tRNA합성매%tRNALeu%안기선화반응%편교반응%CP1결구역
Leucyl-tRNA synthetase%tRNALeu%aminoacylation%editing%CP1 domain
超嗜热菌Aquifex aeolicus亮氨酰-tRNA合成酶(αβ-LeuRS)是已知的唯一的双肽链LeuRS.通过αβ-LeuRS和大肠杆菌LeuRS相应肽段的重组和重组酶性质的研究发现,αβ-LeuRS的α亚基C末端36个氨基酸对于αβ-LeuRS的氨基酰化活力至关重要.αβ-LeuRS的两个亚基人为融合得到的单亚基酶SLeuRS-αβ,具有完全的野生型双亚基酶活力,其热稳定性显著增强.同时,通过亚基重组揭示了LeuRS对于不同种属的tRNALeu的识别元件位于α亚基内,而其中的CP1结构域不仅是LeuRS行使编校功能的结构基础,对于LeuRS识别不同种属来源的tRNALeu也是十分重要的.通过不同来源的LeuRS一级结构比较,克隆了单独的CP1结构域组成的肽(CP1),发现唯有A.aeolicus αβ-LeuRS的CP1对错误的氨基酰化产物具有体外编校功能.它与其他3种来源于细菌keuRS的CP1都能够编校误氨基酰化的古老形式的亮氨酸小螺旋(minihelixLeu).通过同源序列比较发现,在αβ-LeuRS的CP1内存在一个由20个氨基酸组成的特异的结构模体,它对CP1发挥体外编校功能必不可少,引入原本不具有体外编校功能的E.coli的CP1后则可使其获得编校功能,但是该模体不影响全酶的编校功能.αβ-LeuRS中与tRNA结合有关的亚基--β亚基也可以赋予E.coli CP1编校功能.这些研究结果充分表明,来源于古老的超嗜热菌A.aeolicus的αβ-LeuRS保留了进化的遗迹--具有编校活力的CP1和与其编校功能密切相关的由20个氨基酸组成的特异的结构模体,它们在进化过程中随着其他结构域招募进合成酶中而逐渐失去了对全酶编校功能的作用.这一发现有力地支持了aaRS通过纳入新的结构域以加速进化过程的理论,并且也从不同角度为aaRS/tRNA共进化理论提供了可靠的依据.
超嗜熱菌Aquifex aeolicus亮氨酰-tRNA閤成酶(αβ-LeuRS)是已知的唯一的雙肽鏈LeuRS.通過αβ-LeuRS和大腸桿菌LeuRS相應肽段的重組和重組酶性質的研究髮現,αβ-LeuRS的α亞基C末耑36箇氨基痠對于αβ-LeuRS的氨基酰化活力至關重要.αβ-LeuRS的兩箇亞基人為融閤得到的單亞基酶SLeuRS-αβ,具有完全的野生型雙亞基酶活力,其熱穩定性顯著增彊.同時,通過亞基重組揭示瞭LeuRS對于不同種屬的tRNALeu的識彆元件位于α亞基內,而其中的CP1結構域不僅是LeuRS行使編校功能的結構基礎,對于LeuRS識彆不同種屬來源的tRNALeu也是十分重要的.通過不同來源的LeuRS一級結構比較,剋隆瞭單獨的CP1結構域組成的肽(CP1),髮現唯有A.aeolicus αβ-LeuRS的CP1對錯誤的氨基酰化產物具有體外編校功能.它與其他3種來源于細菌keuRS的CP1都能夠編校誤氨基酰化的古老形式的亮氨痠小螺鏇(minihelixLeu).通過同源序列比較髮現,在αβ-LeuRS的CP1內存在一箇由20箇氨基痠組成的特異的結構模體,它對CP1髮揮體外編校功能必不可少,引入原本不具有體外編校功能的E.coli的CP1後則可使其穫得編校功能,但是該模體不影響全酶的編校功能.αβ-LeuRS中與tRNA結閤有關的亞基--β亞基也可以賦予E.coli CP1編校功能.這些研究結果充分錶明,來源于古老的超嗜熱菌A.aeolicus的αβ-LeuRS保留瞭進化的遺跡--具有編校活力的CP1和與其編校功能密切相關的由20箇氨基痠組成的特異的結構模體,它們在進化過程中隨著其他結構域招募進閤成酶中而逐漸失去瞭對全酶編校功能的作用.這一髮現有力地支持瞭aaRS通過納入新的結構域以加速進化過程的理論,併且也從不同角度為aaRS/tRNA共進化理論提供瞭可靠的依據.
초기열균Aquifex aeolicus량안선-tRNA합성매(αβ-LeuRS)시이지적유일적쌍태련LeuRS.통과αβ-LeuRS화대장간균LeuRS상응태단적중조화중조매성질적연구발현,αβ-LeuRS적α아기C말단36개안기산대우αβ-LeuRS적안기선화활력지관중요.αβ-LeuRS적량개아기인위융합득도적단아기매SLeuRS-αβ,구유완전적야생형쌍아기매활력,기열은정성현저증강.동시,통과아기중조게시료LeuRS대우불동충속적tRNALeu적식별원건위우α아기내,이기중적CP1결구역불부시LeuRS행사편교공능적결구기출,대우LeuRS식별불동충속래원적tRNALeu야시십분중요적.통과불동래원적LeuRS일급결구비교,극륭료단독적CP1결구역조성적태(CP1),발현유유A.aeolicus αβ-LeuRS적CP1대착오적안기선화산물구유체외편교공능.타여기타3충래원우세균keuRS적CP1도능구편교오안기선화적고로형식적량안산소라선(minihelixLeu).통과동원서렬비교발현,재αβ-LeuRS적CP1내존재일개유20개안기산조성적특이적결구모체,타대CP1발휘체외편교공능필불가소,인입원본불구유체외편교공능적E.coli적CP1후칙가사기획득편교공능,단시해모체불영향전매적편교공능.αβ-LeuRS중여tRNA결합유관적아기--β아기야가이부여E.coli CP1편교공능.저사연구결과충분표명,래원우고로적초기열균A.aeolicus적αβ-LeuRS보류료진화적유적--구유편교활력적CP1화여기편교공능밀절상관적유20개안기산조성적특이적결구모체,타문재진화과정중수착기타결구역초모진합성매중이축점실거료대전매편교공능적작용.저일발현유력지지지료aaRS통과납입신적결구역이가속진화과정적이론,병차야종불동각도위aaRS/tRNA공진화이론제공료가고적의거.
Aminoacyl-tRNA synthetases (aaRSs) comprise an ancient, diverse enzyme family that catalyzes specific attachment of amino acids to their cognate tRNAs and ensures the accurate translation of the genetic code in the first step of the protein synthesis[1]. On the basis of conserved sequence and characteristic structural motifs, aaRSs can be divided into two classes (class Ⅰ and Ⅱ ) with ten members in each class[2]. Leucyl-tRNA synthetase (LeuRS) belongs to class la aaRSs and the canonical LeuRSs are monomer. Aquifex aeolicus αβ-LeuRS is the only known heterodimeric LeuRS[3]. By fusion and recombination of the genes encoding the α and β subunits from A. aeolicus αβ-LeuRS and the equivalent amino-and carboxy-terminal parts of E. coli LeuRS (identified as α' and β'), five monomeric and five heterodimeric LeuRS mutants were obtained. Seven of these were successfully overexpressed in vivo and purified, while three dimeric mutants with the β' part of E. coli LeuRS were not successfully expressed.The seven purified mutants catalyzed amino acid activation, although several exhibited reduced aminoacylation properties. Removal of the last 36 residues of the α subunit of the A. aeolicus enzyme was determined to be deleterious for tRNA charging. The subunit exchange showed that the cross-speciesspecific recognition of A. aeolicus tRNALeu occurs at the α subunit. None of the mixed E. coli-A.aeolicus enzymes were as thermostable as the native αβ-LeuRS. However, the fusion of the α and βpeptides from A. aeolicus as a single chain analogous to canonical LeuRS resulted in a product more resistant to heat denaturation than the original enzyme. The editing reactions catalyzed by aaRSs are critical for the faithful protein synthesis by correcting errors. We reported that only the isolated editing domain (CP1 domain) of αβ-LeuRS catalyzes the hydrolytic editing of both mischarged tRNALeu and minihelixLeu . Within the domain, we identified a crucial 20-amino-acid motif to the editing of CP1 of αβ-LeuRS that confers the editing capacity to the inactive isolated CP1 domain of E. coli LeuRS. However,the motif did not affect the editing function of αβ-LeuRS. Fusion of the β-subunit of αβ-LeuRS to the E.coli CP1 domain activates its editing function. These results suggest that αβ-LeuRS still carries the basic features from a primitive synthetase molecule.