西伯利亚鲟鱼(Acipenser baerii Brandt, 1869)精子的磷蛋白质组学分析:洞察低温保存诱导的DMSO和甲醇变化。

IF 3.1 2区 生物学 Q2 REPRODUCTIVE BIOLOGY
Mariola A Dietrich, Natalia Kodzik, Magdalena Bakun, Mirosław Szczepkowski, Andrzej Ciereszko
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引用次数: 0

摘要

精液冷冻保存是水产养殖中的一项关键技术,可以长期保存西伯利亚鲟鱼等濒危物种的遗传物质(Acipenser baerii Brandt, 1869)。甲醇(MeOH)和二甲基亚砜(DMSO)对解冻后鲟鱼精液质量的影响相似,但DMSO显著降低了孵化率。鉴于我们之前在鲟鱼精子蛋白质组中发现的冷冻保护剂特异性差异,我们使用无标记定量磷蛋白质组学研究了dmso诱导功能障碍的分子基础。在新鲜精子中,在736个蛋白上鉴定了1649个磷酸化位点,形成了鱼类中最广泛的磷酸化精子蛋白数据库。功能富集分析表明,这些磷酸化蛋白主要参与纤毛组织、能量代谢、精子发生、跨膜运输、囊泡介导的运输以及精子与透明带的结合,主要定位于细胞质、纤毛和线粒体。低温保存深刻地改变了磷蛋白组,269个磷位点在新鲜和低温保存的样品中表现出不同的磷酸化。DMSO诱导114种蛋白质的231个位点发生磷酸化变化,而MeOH影响127种蛋白质的260个位点。每种冷冻保护剂都有不同的磷酸化模式,包括纤毛组装、糖酵解、磷脂酰肌醇代谢、染色质结构和与运动性受损、膜不稳定和顶体完整性降低相关的离子通道调节。dmso特异性改变破坏核机会蛋白结构和中心粒组织,同时抑制Rho信号,这对顶体反应和肌动蛋白丝动力学至关重要,这可能导致低孵化率。相反,MeOH独特地增强AMPK信号,促进线粒体ATP缓冲和能量稳态。这项研究首次对鲟鱼精子进行了全面的磷蛋白质组学分析,将dmso诱导的破坏与受精结果受损联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phosphoproteomic profiling of Siberian sturgeon (Acipenser baerii Brandt, 1869) sperm: insights into cryopreservation-induced changes with DMSO and methanol†.

Semen cryopreservation is a crucial technique in aquaculture, enabling the long-term preservation of genetic material from endangered species such as the Siberian sturgeon (Acipenser baerii Brandt, 1869). While methanol (MeOH) and dimethyl sulfoxide (DMSO) similarly affect sturgeon semen quality post-thaw, DMSO significantly reduces hatching rates. Given our prior findings on cryoprotectant-specific differences in the sturgeon sperm proteome, we investigated the molecular basis of DMSO-induced dysfunction using label-free quantitative phosphoproteomics. In fresh sperm, 1649 phosphorylation sites were identified on 736 proteins, forming the most extensive database of phosphorylated sperm proteins in fish. Functional enrichment analysis showed these phosphoproteins were primarily involved in cilium organization, energy metabolism, spermatogenesis, transmembrane transport, vesicle-mediated transport, and sperm binding to the zona pellucida, predominantly localizing to cytoplasm, cilia, and mitochondria. Cryopreservation profoundly altered the phosphoproteome, with 269 phosphosites showing differential phosphorylation between fresh and cryopreserved samples. DMSO induced phosphorylation changes at 231 sites across 114 proteins, whereas MeOH affected 260 sites across 127 proteins. Distinct phosphorylation patterns were identified for each cryoprotectant, with shared alterations involving cilium assembly, glycolysis, phosphatidylinositol metabolism, chromatin structure, and ion channel regulation associated with impaired motility, membrane destabilization, and reduced acrosomal integrity. DMSO-specific changes disrupted nucleoporin structure and centriole organization while inhibiting Rho signaling, crucial for acrosomal reaction and actin filament dynamics, which likely contribute to low hatching outcomes. In contrast, MeOH uniquely enhanced AMPK signaling, promoting mitochondrial ATP buffering and energy homeostasis. This study provides the first comprehensive phosphoproteomic analysis of sturgeon sperm, linking DMSO-induced disruptions to impaired fertilization outcomes.

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来源期刊
Biology of Reproduction
Biology of Reproduction 生物-生殖生物学
CiteScore
6.30
自引率
5.60%
发文量
214
审稿时长
1 months
期刊介绍: Biology of Reproduction (BOR) is the official journal of the Society for the Study of Reproduction and publishes original research on a broad range of topics in the field of reproductive biology, as well as reviews on topics of current importance or controversy. BOR is consistently one of the most highly cited journals publishing original research in the field of reproductive biology.
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