The role of the antennal glands and gills in acid-base regulation and ammonia excretion of a marine osmoconforming brachyuran

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Comparative Biochemistry and Physiology A-Molecular & Integrative Physiology Pub Date : 2024-03-02 DOI:10.1016/j.cbpa.2024.111619
Garett Joseph Patrick Allen , Alex R. Quijada-Rodriguez , Jonathan M. Wilson , Dirk Weihrauch
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Abstract

The excretory mechanisms of stenohaline marine osmoconforming crabs are often compared to those of the more extensively characterized euryhaline osmoregulating crabs. These comparisons may have limitations, given that unlike euryhaline brachyurans the gills of stenohaline marine osmoconformers possess ion-leaky paracellular pathways and lack the capacity to undergo ultrastructural changes that can promote ion-transport processes in dilute media. Furthermore, the antennal glands of stenohaline marine osmoconformers are poorly characterized making it difficult to determine what role urinary processes play in excretion. In the presented study, ammonia excretory processes as well as related acid-base equivalent transport rates and mechanisms were investigated in the Dungeness crab, Metacarcinus magister – an economically valuable stenohaline marine osmoconforming crab. Isolated and perfused gills were found to predominantly eliminate ammonia through a microtubule network-dependent active NH4+ transport mechanism that is likely performed by cells lining the arterial pockets of the gill lamella where critical Na+/K+-ATPase detection was observed. The V-type H+-ATPase – a vital component to transbranchial ammonia excretion mechanisms of euryhaline crabs - was not found to contribute significantly to ammonia excretion; however, this may be due to the transporter's unexpected apical localization. Although unconnected to ammonia excretion rates, a membrane-bound isoform of carbonic anhydrase was localized to the apical and basolateral membranes of lamella suited for respiration. Urine was found to contain significantly less ammonia as well as carbonate species than the hemolymph, indicating that unlike those of some euryhaline crabs the antennal glands of the Dungeness crab reabsorb these molecules rather than eliminate them for excretion.

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海洋渗透型糠虾触角腺和鳃在酸碱调节和氨排泄中的作用
人们经常将石炭酸海洋渗透调节蟹的排泄机制与特征更为广泛的极阴性渗透调节蟹的排泄机制进行比较。这些比较可能有其局限性,因为与极海洋性腕足动物不同的是,stenohaline 海洋渗透调节蟹的鳃具有离子泄漏的旁细胞通路,缺乏发生超微结构变化的能力,而这种变化可以促进稀介质中的离子传输过程。此外,石炭酸海洋渗透变构动物的触角腺特征不明显,因此很难确定排泄过程中泌尿系统所起的作用。本研究调查了邓杰内斯蟹(Metacarcinus magister)的氨排泄过程以及相关的酸碱等效迁移率和机制。研究发现,分离和灌注的鳃主要通过微管网络依赖的主动 NH4+ 转运机制消除氨,这种机制可能是由鳃片动脉袋内衬细胞执行的,在鳃片动脉袋内观察到了关键的 Na+/K+-ATP 酶检测。V 型 H+-ATP 酶是极叉尾蟹跨支氨排泄机制的重要组成部分,但研究发现它对氨的排泄没有显著贡献;不过,这可能是由于该转运体意外地定位在顶端。虽然与氨的排泄率无关,但碳酸酐酶的膜结合异构体被定位在适合呼吸的薄片的顶端和基底侧膜上。研究发现,尿液中的氨和碳酸盐含量明显低于血淋巴,这表明与某些极卤蟹不同,邓杰内斯蟹的触角腺能重吸收这些分子,而不是将其排出体外。
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来源期刊
CiteScore
5.00
自引率
4.30%
发文量
155
审稿时长
3 months
期刊介绍: Part A: Molecular & Integrative Physiology of Comparative Biochemistry and Physiology. This journal covers molecular, cellular, integrative, and ecological physiology. Topics include bioenergetics, circulation, development, excretion, ion regulation, endocrinology, neurobiology, nutrition, respiration, and thermal biology. Study on regulatory mechanisms at any level of organization such as signal transduction and cellular interaction and control of behavior are also published.
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