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JUNO-IZUMO1 复合物的分子动力学研究揭示了受精过程中的生物学相关机制。

Molecular dynamics of JUNO-IZUMO1 complexation suggests biologically relevant mechanisms in fertilization.

机构信息

Department of Health Sciences and Technology, ETH Zurich, Zurich, Switzerland.

Lehrstuhl für Angewandte Physik and Center for NanoScience, Ludwig-Maximilians-Universität, München, Munich, Germany.

出版信息

Sci Rep. 2023 Nov 20;13(1):20342. doi: 10.1038/s41598-023-46835-0.

Abstract

JUNO-IZUMO1 binding is the first known physical link created between the sperm and egg membranes in fertilization, however, how this initiates sperm-egg fusion remains elusive. As advanced structural insights will help to combat the infertility crisis, or advance fertility control, we employed all-atom Molecular Dynamics (MD) to derive dynamic structural insights that are difficult to obtain experimentally. We found that the hydrated JUNO-IZUMO1 interface is composed of a large set of short-lived non-covalent interactions. The contact interface is destabilized by strategically located point mutations, as well as by Zn ions, which shift IZUMO1 into the non-binding "boomerang" conformation. We hypothesize that the latter might explain how the transient zinc spark, as released after sperm entry into the oocyte, might contribute to block polyspermy. To address a second mystery, we performed another set of simulations, as it was previously suggested that JUNO in solution is unable to bind to folate despite it belonging to the folate receptor family. MD now suggests that JUNO complexation with IZUMO1 opens up the binding pocket thereby enabling folate insertion. Our MD simulations thus provide crucial new hypotheses how the dynamics of the JUNO-IZUMO1 complex upon solvation might regulate fertility.

摘要

JUNO-IZUMO1 结合是受精过程中精子和卵膜之间首次建立的已知物理连接,但这如何引发精子-卵子融合仍然难以捉摸。由于先进的结构见解将有助于应对不孕危机或提高生育控制水平,我们采用全原子分子动力学 (MD) 来获得难以通过实验获得的动态结构见解。我们发现,水合 JUNO-IZUMO1 界面由大量短寿命的非共价相互作用组成。接触界面通过策略性定位的点突变以及 Zn 离子失稳,Zn 离子将 IZUMO1 转变为非结合的“回飞棒”构象。我们假设后者可能解释了为什么精子进入卵母细胞后释放的短暂锌火花可能有助于阻止多精受精。为了解决第二个谜团,我们进行了另一组模拟,因为之前有人提出,尽管 JUNO 属于叶酸受体家族,但它在溶液中无法与叶酸结合。MD 现在表明,JUNO 与 IZUMO1 的复合物打开了结合口袋,从而能够插入叶酸。因此,我们的 MD 模拟为 JUNO-IZUMO1 复合物在溶剂化时的动力学如何调节生育能力提供了重要的新假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10a5/10663542/46552218c3ed/41598_2023_46835_Fig1_HTML.jpg

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