Phanerochaete chrysosporium 中部代谢途径与血红素生物合成途径之间的相互影响。

IF 3.9 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Applied Microbiology and Biotechnology Pub Date : 2024-12-01 Epub Date: 2024-01-06 DOI:10.1007/s00253-023-12846-0
Daisuke Miura, Ryoga Tsurigami, Hiroyuki Kato, Hiroyuki Wariishi, Motoyuki Shimizu
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引用次数: 0

摘要

使用生物素化血红素-链霉亲和素微珠系统对白腐真菌 Phanerochaete chrysosporium 产生的血红素结合蛋白进行了全面分析。结果发现线粒体柠檬酸合成酶(PcCS)、3-磷酸甘油醛脱氢酶(PcGAPDH)和2-Cys硫代过氧化物酶(哺乳动物 HBP23 同源物)是假定的血红素结合蛋白。利用异源表达的重组蛋白对其中的 PcCS 和 PcGAPDH 进行了进一步鉴定。用hemin滴定的PcCS的差异光谱显示,414 nm处的Soret吸光度增加,表明血红素的轴向配体是一个His残基。PcCS 的活性受到 hemin 的强烈抑制,草酰乙酸 Ki 为 8.7 μM,乙酰-CoA Ki 为 5.8 μM。由于血红素生物合成的最后一步发生在线粒体内膜,因此血红素对 PcCS 的抑制作用被认为是一种生理现象。血红素的抑制模式与 CoA 类似物相似,表明血红素在 AcCoA-CoA 结合位点的 His347 处与 PcCS 结合,这也得到了 PcCS 同源模型的支持。PcGAPDH 也受到血红素的抑制,但抑制浓度低于 PcCS。这可能是由于这两种酶的位置不同造成的。综合这些现象,可以得出结论:血红素对中心代谢途径和血红素合成途径的代谢调节发生在线粒体和细胞质中。中央代谢途径和血红素生物合成途径之间通过血红素分子进行的这种新型途径串扰,对于调节真菌芳香降解过程中的代谢平衡(血红素合成、ATP 合成、三羧酸(TCA)循环通量平衡和细胞氧化还原平衡(NADPH 生成))非常重要。要点:- 对蛹虫草中的血红素结合蛋白进行了全面调查。- 发现了包括 CS 和 GAPDH 在内的多种血红素结合蛋白。- 发现了血红素在中央代谢途径中的新型代谢调节作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pathway crosstalk between the central metabolic and heme biosynthetic pathways in Phanerochaete chrysosporium.

A comprehensive analysis to survey heme-binding proteins produced by the white-rot fungus Phanerochaete chrysosporium was achieved using a biotinylated heme-streptavidin beads system. Mitochondrial citrate synthase (PcCS), glyceraldehyde 3-phosphate dehydrogenase (PcGAPDH), and 2-Cys thioredoxin peroxidase (mammalian HBP23 homolog) were identified as putative heme-binding proteins. Among these, PcCS and PcGAPDH were further characterized using heterologously expressed recombinant proteins. Difference spectra of PcCS titrated with hemin exhibited an increase in the Soret absorbance at 414 nm, suggesting that the axial ligand of the heme is a His residue. The activity of PcCS was strongly inhibited by hemin with Ki oxaloacetate of 8.7 μM and Ki acetyl-CoA of 5.8 μM. Since the final step of heme biosynthesis occurred at the mitochondrial inner membrane, the inhibition of PcCS by heme is thought to be a physiological event. The inhibitory mode of the heme was similar to that of CoA analogues, suggesting that heme binds to PcCS at His347 at the AcCoA-CoA binding site, which was supported by the homology model of PcCS. PcGAPDH was also inhibited by heme, with a lower concentration than that for PcCS. This might be caused by the different location of these enzymes. From the integration of these phenomena, it was concluded that metabolic regulations by heme in the central metabolic and heme synthetic pathways occurred in the mitochondria and cytosol. This novel pathway crosstalk between the central metabolic and heme biosynthetic pathways, via a heme molecule, is important in regulating the metabolic balance (heme synthesis, ATP synthesis, flux balance of the tricarboxylic acid (TCA) cycle and cellular redox balance (NADPH production) during fungal aromatic degradation. KEY POINTS: • A comprehensive survey of heme-binding proteins in P. chrysosporium was achieved. • Several heme-binding proteins including CS and GAPDH were identified. • A novel metabolic regulation by heme in the central metabolic pathways was found.

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来源期刊
Applied Microbiology and Biotechnology
Applied Microbiology and Biotechnology 工程技术-生物工程与应用微生物
CiteScore
10.00
自引率
4.00%
发文量
535
审稿时长
2 months
期刊介绍: Applied Microbiology and Biotechnology focusses on prokaryotic or eukaryotic cells, relevant enzymes and proteins; applied genetics and molecular biotechnology; genomics and proteomics; applied microbial and cell physiology; environmental biotechnology; process and products and more. The journal welcomes full-length papers and mini-reviews of new and emerging products, processes and technologies.
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