Bee Venom Proteins Enhance Proton Absorption by Membranes Composed of Phospholipids of the Myelin Sheath and Endoplasmic Reticulum: Pharmacological Relevance.

IF 4.8 3区 医学 Q2 CHEMISTRY, MEDICINAL
Pharmaceuticals Pub Date : 2025-09-05 DOI:10.3390/ph18091334
Zhuoyan Zeng, Mingsi Wei, Shuhao Zhang, Hanchen Cui, Ruben K Dagda, Edward S Gasanoff
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引用次数: 0

Abstract

Background/Objectives: Recent evidence challenges the classical chemiosmotic theory, suggesting that proton movement along membrane surfaces-not bulk-phase gradients-drives bioenergetic processes. Proton accumulation on membranes like the myelin sheath and endoplasmic reticulum (ER) may represent a universal mechanism for cellular energy storage. This study investigates whether phospholipids from these membranes, combined with anionic bee venom proteins, enhance proton absorption, potentially elucidating a novel bioenergetic pathway. Methods: Five phospholipids (phosphatidylethanolamine, phosphatidylserine, phosphatidylinositol, sphingomyelin, phosphatidylcholine) from rat liver were isolated to model myelin/ER membranes. Anionic proteins (pI 5.65-5.80) were purified from bee venom via cation exchange chromatography. Liposomes (with/without proteins) were prepared, and proton absorption was quantified by pH changes in suspensions versus pure water. Statistical significance was assessed via ANOVA and t-tests. Results: All phospholipid liposomes examined in this study absorbed protons under the tested conditions, with phosphatidylethanolamine showing the highest capacity (pH increase: 7.00 → 7.18). Liposomes enriched with anionic proteins exhibited significantly greater proton absorption (e.g., phosphatidylserine + proteins: pH 8.15 vs. 7.15 alone; p < 2.43 × 10-6). Sphingomyelin-protein liposomes absorbed the most protons, suggesting that protein-phospholipid interactions modulate surface proton affinity. Conclusions: Anionic bee venom proteins amplify proton absorption by phospholipid membranes, supporting the hypothesis that lipid-protein complexes act as "proton capacitors". This mechanism may underpin extramitochondrial energy storage in myelin and ER. Pharmacologically, targeting these interactions could mitigate bioenergetic deficits in aging or disease. Further research should define the structural basis of proton capture by membrane-anchored proteins.

蜂毒蛋白增强髓鞘和内质网磷脂组成的膜对质子的吸收:药理学相关性。
背景/目的:最近的证据挑战了经典的化学渗透理论,表明质子沿着膜表面运动-而不是体相梯度-驱动生物能量过程。质子在髓鞘和内质网等细胞膜上的积累可能是细胞能量储存的一种普遍机制。这项研究调查了这些膜上的磷脂是否与阴离子蜂毒蛋白结合,增强了质子的吸收,潜在地阐明了一种新的生物能量途径。方法:从大鼠肝脏中分离5种磷脂(磷脂酰乙醇胺、磷脂酰丝氨酸、磷脂酰肌醇、鞘磷脂、磷脂酰胆碱)制备髓磷脂/内质网膜模型。用阳离子交换色谱法从蜂毒中纯化出阴离子蛋白(pI 5.65 ~ 5.80)。制备了脂质体(含/不含蛋白质),并通过悬浮液与纯水的pH变化来定量质子吸收。通过方差分析和t检验评估统计学显著性。结果:在实验条件下,所有磷脂脂质体对质子的吸收能力均以磷脂酰乙醇胺的吸收能力最强(pH值升高幅度为7.00→7.18)。富含阴离子蛋白的脂质体表现出更大的质子吸收(例如,磷脂酰丝氨酸+蛋白:pH值为8.15,而单独为7.15;p < 2.43 × 10-6)。鞘磷脂-蛋白脂质体吸收了最多的质子,表明蛋白质-磷脂相互作用调节了表面质子的亲和力。结论:阴离子蜂毒蛋白增强磷脂膜对质子的吸收,支持脂蛋白复合物充当“质子电容器”的假设。这一机制可能是髓磷脂和内质网线粒体外能量储存的基础。药理学上,靶向这些相互作用可以减轻衰老或疾病中的生物能量缺陷。进一步的研究应该确定膜锚定蛋白捕获质子的结构基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Pharmaceuticals
Pharmaceuticals Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
6.10
自引率
4.30%
发文量
1332
审稿时长
6 weeks
期刊介绍: Pharmaceuticals (ISSN 1424-8247) is an international scientific journal of medicinal chemistry and related drug sciences.Our aim is to publish updated reviews as well as research articles with comprehensive theoretical and experimental details. Short communications are also accepted; therefore, there is no restriction on the maximum length of the papers.
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