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7R2W

Mutant S-adenosylmethionine synthetase from E.coli complexed with AMPPNP and methionine

7R2W の概要
エントリーDOI10.2210/pdb7r2w/pdb
分子名称S-adenosylmethionine synthase, PHOSPHOAMINOPHOSPHONIC ACID-ADENYLATE ESTER, MAGNESIUM ION, ... (5 entities in total)
機能のキーワードdihedral d2 symmetry, homotetramer a4 symmetry, isologous interfaces 2, s-adenosylmethionine synthetase, transferase
由来する生物種Escherichia coli
タンパク質・核酸の鎖数1
化学式量合計43420.29
構造登録者
Shahar, A.,Kleiner, D.,Bershtein, S.,Zarivach, R. (登録日: 2022-02-06, 公開日: 2022-07-13, 最終更新日: 2024-01-31)
主引用文献Kleiner, D.,Shapiro Tuchman, Z.,Shmulevich, F.,Shahar, A.,Zarivach, R.,Kosloff, M.,Bershtein, S.
Evolution of homo-oligomerization of methionine S-adenosyltransferases is replete with structure-function constrains.
Protein Sci., 31:e4352-e4352, 2022
Cited by
PubMed Abstract: Homomers are prevalent in bacterial proteomes, particularly among core metabolic enzymes. Homomerization is often key to function and regulation, and interfaces that facilitate the formation of homomeric enzymes are subject to intense evolutionary change. However, our understanding of the molecular mechanisms that drive evolutionary variation in homomeric complexes is still lacking. How is the diversification of protein interfaces linked to variation in functional regulation and structural integrity of homomeric complexes? To address this question, we studied quaternary structure evolution of bacterial methionine S-adenosyltransferases (MATs)-dihedral homotetramers formed along a large and conserved dimeric interface harboring two active sites, and a small, recently evolved, interdimeric interface. Here, we show that diversity in the physicochemical properties of small interfaces is directly linked to variability in the kinetic stability of MAT quaternary complexes and in modes of their functional regulation. Specifically, hydrophobic interactions within the small interface of Escherichia coli MAT render the functional homotetramer kinetically stable yet impose severe aggregation constraints on complex assembly. These constraints are alleviated by electrostatic interactions that accelerate dimer-dimer assembly. In contrast, Neisseria gonorrhoeae MAT adopts a nonfunctional dimeric state due to the low hydrophobicity of its small interface and the high flexibility of its active site loops, which perturbs small interface integrity. Remarkably, in the presence of methionine and ATP, N. gonorrhoeae MAT undergoes substrate-induced assembly into a functional tetrameric state. We suggest that evolution acts on the interdimeric interfaces of MATs to tailor the regulation of their activity and stability to unique organismal needs.
PubMed: 35762725
DOI: 10.1002/pro.4352
主引用文献が同じPDBエントリー
実験手法
X-RAY DIFFRACTION (1.6 Å)
構造検証レポート
Validation report summary of 7r2w
検証レポート(詳細版)ダウンロードをダウンロード

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件を2024-10-30に公開中

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