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Phase-dependent redox insulation in mussel adhesion

机译:贻贝粘附中相位依赖的氧化还原绝缘

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Catecholic 3,4-dihydroxyphenyl-l-alanine (Dopa) residues in mussel foot proteins (mfps) contribute critically to mussel ( Mytilus californianus ) plaque adhesion, but only if protected from oxidation at the adhesive-substratum interface. Dopa oxidation is thermodynamically favorable in seawater yet barely detectable in plaques; therefore, we investigated how plaques insulate Dopa-containing mfps against oxidation. Seawater sulfate triggers an mfp3 and mfp6 liquid-liquid phase separation (LLPS). By combining plaque cyclic voltammetry with electrophoresis, mass spectrometry, and redox-exchange chemistry, we show that Dopa-containing mfp3 and mfp6 in phase-separated droplets remain stable despite rapid oxidation in the surrounding equilibrium solution. The results suggest that a cohort of oxidation-prone proteins is endowed with phase-dependent redox stability. Moreover, in forming LLPS compartments, Dopa proteins become reservoirs of chemical energy.
机译:在贻贝脚蛋白(MFPS)中的发育3,4-二羟基苯基-L-丙氨酸(DOPA)残基(MFPS)批判性地促成贻贝(CARIFORUS CALIFORNIANUS)斑块粘附,但仅在粘合剂底界面的氧化中受到保护。 DOPA氧化在海水中具有热力学上,在斑块中几乎无法检测到;因此,我们调查了斑块如何将含有多巴的MFP隔离氧化。海水硫酸盐触发MFP3和MFP6液 - 液相分离(LLP)。通过用电泳,质谱和氧化还原化学组合斑块环状伏安法,我们表明,尽管周围的平衡溶液中快速氧化,但相位分离液滴中的含多巴的MFP3和MFP6保持稳定。结果表明,氧化型易蛋白队列具有相依赖的氧化还原稳定性。此外,在形成LLPS隔室中,DOPA蛋白成为化学能的储存器。

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