A mathematical model for the branched chain amino acid biosynthetic pathways of Escherichia coli K12.
大腸菌K12の分岐鎖アミノ酸生合成経路の数理モデル (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- その他の原著論文
- 対象
- 未確定
- 出版年
- 2005
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- doi.org
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- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/03
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- 公開
日本語要約(機械生成)
大腸菌のシステム生物学解明の第一歩として、中間的な複雑さを持つ代謝系、すなわち分岐鎖アミノ酸(L-イソロイシン、L-バリン、L-ロイシン)の生合成経路を数理モデル化した。kMechとCelleratorを用いて、各酵素反応を基本の会合・解離反応に分解し、常微分方程式に変換して数値的に解いた。モデルには、全酵素反応、調節回路、基質複数反応(ピンポンやバイバイ機構)、フィードバック阻害(アロステリック、競合、非競合)、アイソザイムや転移反応による代謝流のチャネリング、能動輸送機構が含まれる。このモデルは実験測定結果を再現する。
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抄録
As a first step toward the elucidation of the systems biology of the model organism Escherichia coli, it was our goal to mathematically model a metabolic system of intermediate complexity, namely the well studied end product-regulated pathways for the biosynthesis of the branched chain amino acids L-isoleucine, L-valine, and L-leucine. This has been accomplished with the use of kMech (Yang, C.-R., Shapiro, B. E., Mjolsness, E. D., and Hatfield, G. W. (2005) Bioinformatics 21, in press), a Cellerator (Shapiro, B. E., Levchenko, A., Meyerowitz, E. M., Wold, B. J., and Mjolsness, E. D. (2003) Bioinformatics 19, 677-678) language extension that describes a suite of enzyme reaction mechanisms. Each enzyme mechanism is parsed by kMech into a set of fundamental association-dissociation reactions that are translated by Cellerator into ordinary differential equations. These ordinary differential equations are numerically solved by Mathematica. Any metabolic pathway can be simulated by stringing together appropriate kMech models and providing the physical and kinetic parameters for each enzyme in the pathway. Writing differential equations is not required. The mathematical model of branched chain amino acid biosynthesis in E. coli K12 presented here incorporates all of the forward and reverse enzyme reactions and regulatory circuits of the branched chain amino acid biosynthetic pathways, including single and multiple substrate (Ping Pong and Bi Bi) enzyme kinetic reactions, feedback inhibition (allosteric, competitive, and non-competitive) mechanisms, the channeling of metabolic flow through isozymes, the channeling of metabolic flow via transamination reactions, and active transport mechanisms. This model simulates the results of experimental measurements.
MeSH
DOI 10.1074/jbc.m411471200
PMID 15657047
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