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基于分子识别理论鉴定一种新型双功能血管紧张素II/血管加压素受体。

Identification of a novel dual angiotensin II/vasopressin receptor on the basis of molecular recognition theory.

作者信息

Ruiz-Opazo N, Akimoto K, Herrera V L

机构信息

Section of Molecular Genetics, Whitaker Cardiovascular Institute, Boston University School of Medicine, Massachusetts 02118, USA.

出版信息

Nat Med. 1995 Oct;1(10):1074-81. doi: 10.1038/nm1095-1074.

Abstract

The molecular recognition theory suggests that binding sites of interacting proteins, for example, peptide hormone and its receptor binding site, were originally encoded by and evolved from complementary strands of genomic DNA. To test this theory, we screened a rat kidney complementary DNA library twice: first with the angiotensin II (AII) followed by the vasopressin (AVP) antisense oligonucleotide probe, expecting to isolate cDNA clones of the respective receptors. Surprisingly, the identical cDNA clone was isolated twice independently. Structural analysis revealed a single receptor polypeptide with seven predicted transmembrane regions, distinct AII and AVP putative binding domains, a Gs protein-activation motif, and an internalization recognition sequence. Functional analysis revealed specific binding to both AII and AVP as well as AII- and AVP-induced coupling to the adenylate cyclase second messenger system. Site-directed mutagenesis of the predicted AII binding domain obliterates AII binding but preserves AVP binding. This corroborates the dual nature of the receptor and provides direct molecular genetic evidence for the molecular recognition theory.

摘要

分子识别理论认为,相互作用蛋白的结合位点,例如肽激素及其受体结合位点,最初由基因组DNA的互补链编码并从其进化而来。为了验证这一理论,我们对大鼠肾脏互补DNA文库进行了两次筛选:首先用血管紧张素II(AII),然后用抗利尿激素(AVP)反义寡核苷酸探针,期望分离出各自受体的cDNA克隆。令人惊讶的是,两次独立筛选都分离出了相同的cDNA克隆。结构分析揭示了一种单一的受体多肽,具有七个预测的跨膜区域、不同的AII和AVP假定结合结构域、一个Gs蛋白激活基序以及一个内化识别序列。功能分析揭示了该受体与AII和AVP的特异性结合,以及AII和AVP诱导的与腺苷酸环化酶第二信使系统的偶联。对预测的AII结合结构域进行定点诱变消除了AII结合,但保留了AVP结合。这证实了该受体的双重性质,并为分子识别理论提供了直接的分子遗传学证据。

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