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6GVS

Engineered glycolyl-CoA reductase comprising 8 mutations with bound NADP+

6GVS の概要
エントリーDOI10.2210/pdb6gvs/pdb
分子名称Aldehyde dehydrogenase, NADP NICOTINAMIDE-ADENINE-DINUCLEOTIDE PHOSPHATE, POTASSIUM ION, ... (4 entities in total)
機能のキーワードglycolyl-coa reductase, enzyme engineering, nadph, oxidoreductase
由来する生物種Rhodopseudomonas palustris BisB18
詳細
タンパク質・核酸の鎖数10
化学式量合計560576.44
構造登録者
Zarzycki, J.,Trudeau, D.,Scheffen, M.,Erb, T.J.,Tawfik, D.S. (登録日: 2018-06-21, 公開日: 2018-11-28, 最終更新日: 2024-01-17)
主引用文献Trudeau, D.L.,Edlich-Muth, C.,Zarzycki, J.,Scheffen, M.,Goldsmith, M.,Khersonsky, O.,Avizemer, Z.,Fleishman, S.J.,Cotton, C.A.R.,Erb, T.J.,Tawfik, D.S.,Bar-Even, A.
Design and in vitro realization of carbon-conserving photorespiration.
Proc. Natl. Acad. Sci. U.S.A., 115:E11455-E11464, 2018
Cited by
PubMed Abstract: Photorespiration recycles ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) oxygenation product, 2-phosphoglycolate, back into the Calvin Cycle. Natural photorespiration, however, limits agricultural productivity by dissipating energy and releasing CO Several photorespiration bypasses have been previously suggested but were limited to existing enzymes and pathways that release CO Here, we harness the power of enzyme and metabolic engineering to establish synthetic routes that bypass photorespiration without CO release. By defining specific reaction rules, we systematically identified promising routes that assimilate 2-phosphoglycolate into the Calvin Cycle without carbon loss. We further developed a kinetic-stoichiometric model that indicates that the identified synthetic shunts could potentially enhance carbon fixation rate across the physiological range of irradiation and CO, even if most of their enzymes operate at a tenth of Rubisco's maximal carboxylation activity. Glycolate reduction to glycolaldehyde is essential for several of the synthetic shunts but is not known to occur naturally. We, therefore, used computational design and directed evolution to establish this activity in two sequential reactions. An acetyl-CoA synthetase was engineered for higher stability and glycolyl-CoA synthesis. A propionyl-CoA reductase was engineered for higher selectivity for glycolyl-CoA and for use of NADPH over NAD, thereby favoring reduction over oxidation. The engineered glycolate reduction module was then combined with downstream condensation and assimilation of glycolaldehyde to ribulose 1,5-bisphosphate, thus providing proof of principle for a carbon-conserving photorespiration pathway.
PubMed: 30459276
DOI: 10.1073/pnas.1812605115
主引用文献が同じPDBエントリー
実験手法
X-RAY DIFFRACTION (2.579 Å)
構造検証レポート
Validation report summary of 6gvs
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2026-02-04に公開中

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