Identification of putative neuropeptidergic signaling systems in the spiny lobster, Panulirus argus.

Q4 Neuroscience Invertebrate Neuroscience Pub Date : 2020-01-24 DOI:10.1007/s10158-020-0235-9
Andrew E Christie
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引用次数: 11

Abstract

Members of the decapod infraorder Achelata, specifically species from the genus Panulirus, have storied histories as models for investigating the basic principles governing the generation, maintenance, and modulation of rhythmic motor behavior, including modulation by locally released and circulating peptides. Despite their contributions to our understanding of peptidergic neuromodulation, little is known about the identity of the native neuropeptides and neuronal peptide receptors present in these crustaceans. Here, a Panulirus argus nervous system-specific transcriptome was used to help fill this void, providing insight into the neuropeptidome and neuronal peptide receptome of this species. A neuropeptidome consisting of 266 distinct peptides was predicted using the P. argus assembly, 128 having structures placing them into a generally recognized arthropod peptide family: agatoxin-like peptide, allatostatin A (AST-A), allatostatin B, allatostatin C, bursicon, CCHamide, crustacean cardioactive peptide, crustacean hyperglycemic hormone/molt-inhibiting hormone, diuretic hormone 31 (DH31), ecdysis-triggering hormone (ETH), FMRFamide-like peptide (FLP), glycoprotein hormone (GPH), GSEFLamide, inotocin, leucokinin, myosuppressin, natalisin, neuroparsin, neuropeptide F, orcokinin, orcomyotropin, periviscerokinin, pigment-dispersing hormone, pyrokinin, red pigment-concentrating hormone, RYamide, short neuropeptide F (sNPF), SIFamide, sulfakinin, tachykinin-related peptide (TRP), and trissin. Twenty-five putative neuronal receptors, encompassing 15 peptide groups, were also identified from the P. argus transcriptome: AST-A, bursicon, CCHamide, DH31, diuretic hormone 44, ETH, FLP, GPH, inotocin, insulin-like peptide, myosuppressin, natalisin, periviscerokinin, sNPF, and TRP. Collectively, the reported data provide a powerful resource for expanding studies of neuropeptidergic control of physiology and behavior in members of the genus Panulirus specifically, and decapods generally.

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多刺龙虾神经肽能信号系统的鉴定。
十足动物的成员,特别是来自Panulirus属的物种,在研究节律运动行为的产生、维持和调节的基本原理(包括局部释放和循环肽的调节)方面有着悠久的历史。尽管它们有助于我们对多肽能神经调节的理解,但对这些甲壳类动物中存在的天然神经肽和神经肽受体的身份知之甚少。在这里,我们使用了一种帕乌利乌斯神经系统特异性转录组来帮助填补这一空白,从而深入了解了该物种的神经肽丘和神经肽受体。利用P. argus组合预测了一个由266个不同肽组成的神经肽穹窿,其中128个具有将它们放入公认的节肢动物肽家族的结构。agatoxin-like peptide, allatostatin A (AST-A), allatostatin B, allatostatin C, bursicon, chchamide,甲壳类心脏活性肽,甲壳类高血糖激素/脱皮抑制激素,利尿激素31 (DH31),蜕皮触发激素(ETH), FMRFamide-like peptide (FLP),糖蛋白激素(GPH), GSEFLamide,催产素,白细胞凝素,肌抑制素,natalisin, neuroparsin,神经肽F, orcokinin, orcomotropin,周围内脏凝素,色素分散激素,焦激肽,红色素浓缩激素、RYamide、短神经肽F (sNPF)、SIFamide、sulakinin、tachykinin相关肽(TRP)和trissin。此外,我们还从argus的转录组中鉴定出了25个可能的神经元受体,包括15个肽组:AST-A、bursicon、chchamide、DH31、利尿激素44、ETH、FLP、GPH、催产素、胰岛素样肽、肌抑制素、natalisin、周围内脏分裂素、sNPF和TRP。总的来说,报告的数据为扩大研究神经肽能对Panulirus属成员的生理和行为的控制提供了强大的资源,特别是十足类动物。
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来源期刊
Invertebrate Neuroscience
Invertebrate Neuroscience NEUROSCIENCES-
自引率
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>12 weeks
期刊介绍: Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include: Functional analysis of the invertebrate nervous system; Molecular neuropharmacology and toxicology; Neurogenetics and genomics; Functional anatomy; Neurodevelopment; Neuronal networks; Molecular and cellular mechanisms of behavior and behavioural plasticity.
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