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间日疟原虫丝氨酸羟甲基转移酶的结构:对配体结合特异性和功能控制的影响

Structures of Plasmodium vivax serine hydroxymethyltransferase: implications for ligand-binding specificity and functional control.

作者信息

Chitnumsub Penchit, Jaruwat Aritsara, Riangrungroj Pinpunya, Ittarat Wanwipa, Noytanom Krittikar, Oonanant Worrapoj, Vanichthanankul Jarunee, Chuankhayan Phimonphan, Maenpuen Somchart, Chen Chun Jung, Chaiyen Pimchai, Yuthavong Yongyuth, Leartsakulpanich Ubolsree

机构信息

National Center for Genetic Engineering and Biotechnology (BIOTEC), National Science and Technology Development Agency (NSTDA), 113 Thailand Science Park, Phahonyothin Road, Klong Nueng, Klong Luang, Pathum Thani 12120, Thailand.

Life Science Group, Scientific Research Division, National Synchrotron Radiation Research Center, Hsinchu 30076, Taiwan.

出版信息

Acta Crystallogr D Biol Crystallogr. 2014 Dec 1;70(Pt 12):3177-86. doi: 10.1107/S1399004714023128. Epub 2014 Nov 22.

Abstract

Plasmodium parasites, the causative agent of malaria, rely heavily on de novo folate biosynthesis, and the enzymes in this pathway have therefore been explored extensively for antimalarial development. Serine hydroxymethyltransferase (SHMT) from Plasmodium spp., an enzyme involved in folate recycling and dTMP synthesis, has been shown to catalyze the conversion of L- and D-serine to glycine (Gly) in a THF-dependent reaction, the mechanism of which is not yet fully understood. Here, the crystal structures of P. vivax SHMT (PvSHMT) in a binary complex with L-serine and in a ternary complex with D-serine (D-Ser) and (6R)-5-formyltetrahydrofolate (5FTHF) provide clues to the mechanism underlying the control of enzyme activity. 5FTHF in the ternary-complex structure was found in the 6R form, thus differing from the previously reported structures of SHMT-Gly-(6S)-5FTHF from other organisms. This suggested that the presence of D-Ser in the active site can alter the folate-binding specificity. Investigation of binding in the presence of D-Ser and the (6R)- or (6S)-5FTHF enantiomers indicated that both forms of 5FTHF can bind to the enzyme but that only (6S)-5FTHF gives rise to a quinonoid intermediate. Likewise, a large surface area with a highly positively charged electrostatic potential surrounding the PvSHMT folate pocket suggested a preference for a polyglutamated folate substrate similar to the mammalian SHMTs. Furthermore, as in P. falciparum SHMT, a redox switch created from a cysteine pair (Cys125-Cys364) was observed. Overall, these results assert the importance of features such as stereoselectivity and redox status for control of the activity and specificity of PvSHMT.

摘要

疟原虫是疟疾的病原体,严重依赖从头合成叶酸,因此该途径中的酶已被广泛研究用于抗疟疾药物的开发。疟原虫属的丝氨酸羟甲基转移酶(SHMT)是一种参与叶酸循环和dTMP合成的酶,已被证明在依赖四氢叶酸(THF)的反应中催化L-丝氨酸和D-丝氨酸转化为甘氨酸(Gly),但其机制尚未完全了解。在这里,间日疟原虫SHMT(PvSHMT)与L-丝氨酸形成的二元复合物以及与D-丝氨酸(D-Ser)和(6R)-5-甲酰基四氢叶酸(5FTHF)形成的三元复合物的晶体结构为控制酶活性的机制提供了线索。在三元复合物结构中发现5FTHF为6R形式,因此不同于先前报道的其他生物体的SHMT-甘氨酸-(6S)-5FTHF结构。这表明活性位点中D-Ser的存在可以改变叶酸结合特异性。对D-Ser和(6R)-或(6S)-5FTHF对映体存在下的结合研究表明,两种形式的5FTHF都可以与酶结合,但只有(6S)-5FTHF会产生醌类中间体。同样,PvSHMT叶酸口袋周围具有高正电荷静电势的大表面积表明其对类似于哺乳动物SHMTs的多聚谷氨酸化叶酸底物有偏好。此外,与恶性疟原虫SHMT一样,观察到由一对半胱氨酸(Cys125-Cys364)形成的氧化还原开关。总体而言,这些结果证实了立体选择性和氧化还原状态等特征对于控制PvSHMT活性和特异性的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0613/4257618/66f2384b68a4/d-70-03177-fig1.jpg

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