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环状天然产物低聚物:大环化合物的多样性与(生物)合成

Cyclic natural product oligomers: diversity and (bio)synthesis of macrocycles.

作者信息

Zhang Songya, Fan Shuai, He Haocheng, Zhu Jing, Murray Lauren, Liang Gong, Ran Shi, Zhu Yi Zhun, Cryle Max J, He Hai-Yan, Zhang Youming

机构信息

CAS Key Laboratory of Quantitative Engineering Biology, Shenzhen Institute of Synthetic Biology, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.

Shenzhen Key Laboratory of Genome Manipulation and Biosynthesis, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.

出版信息

Chem Soc Rev. 2025 Jan 2;54(1):396-464. doi: 10.1039/d2cs00909a.

Abstract

Cyclic compounds are generally preferred over linear compounds for functional studies due to their enhanced bioavailability, stability towards metabolic degradation, and selective receptor binding. This has led to a need for effective cyclization strategies for compound synthesis and hence increased interest in macrocyclization mediated by thioesterase (TE) domains, which naturally boost the chemical diversity and bioactivities of cyclic natural products. Many non-ribosomal peptide synthetase (NRPS) and polyketide synthase (PKS) derived natural products are assembled to form cyclodimeric compounds, with these molecules possessing diverse structures and biological activities. There is significant interest in identifying the biosynthetic pathways that produce such molecules given the challenge that cyclodimerization represents from a biosynthetic perspective. In the last decade, many groups have pursued the characterization of TE domains and have provided new insights into this biocatalytic machinery: however, the enzymes involved in formation of cyclodimeric compounds have proven far more elusive. In this review we focus on natural products that involve macrocyclization in their biosynthesis and chemical synthesis, with an emphasis on the function and biosynthetic investigation on the special family of TE domains responsible for forming cyclodimeric natural products. We also introduce additional macrocyclization catalysts, including butelase and the C-mediated cyclization of peptides, alongside the formation of cyclodipeptides mediated by cyclodipeptide synthases (CDPS) and single-module NRPSs. Due to the interdisciplinary nature of biosynthetic research, we anticipate that this review will prove valuable to synthetic chemists, drug discovery groups, enzymologists, and the biosynthetic community in general, and inspire further efforts to identify and exploit these biocatalysts for the formation of novel bioactive molecules.

摘要

由于环状化合物具有更高的生物利用度、对代谢降解的稳定性以及选择性受体结合能力,在功能研究中,环状化合物通常比线性化合物更受青睐。这就需要有效的环化策略来进行化合物合成,因此人们对硫酯酶(TE)结构域介导的大环化反应的兴趣日益增加,硫酯酶结构域能够自然地增加环状天然产物的化学多样性和生物活性。许多源自非核糖体肽合成酶(NRPS)和聚酮合酶(PKS)的天然产物会组装形成环二聚体化合物,这些分子具有多样的结构和生物活性。鉴于从生物合成角度来看环二聚化所带来的挑战,确定产生此类分子的生物合成途径引起了人们极大的兴趣。在过去十年中,许多研究团队致力于硫酯酶结构域的表征,并对这种生物催化机制有了新的认识:然而,参与环二聚体化合物形成的酶却难以捉摸得多。在本综述中,我们聚焦于生物合成和化学合成过程中涉及大环化的天然产物,重点关注负责形成环二聚体天然产物的特殊硫酯酶结构域家族的功能和生物合成研究。我们还介绍了其他大环化催化剂,包括布泰酶和肽的碳介导环化反应,以及环二肽合成酶(CDPS)和单模块NRPS介导的环二肽形成反应。由于生物合成研究具有跨学科性质,我们预计本综述对合成化学家、药物研发团队、酶学家以及整个生物合成领域的研究人员都将具有重要价值,并激励他们进一步努力识别和利用这些生物催化剂来合成新型生物活性分子。

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