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Challenging the paradigms of gut architecture and feeding biomechanics in shallow water polychaetes

机译:挑战浅水多毛类动物的肠道建筑和喂养生物力学的范例

摘要

For well over a century a great deal of effort has been expended into investigation of how polychaetes capture their food but there has been a relative lack of attention paid to the processing of ingested material in the various forms and functioning of the anterior gut in errant polychaetes. The principal focus of this study was the examination of the functional anatomy of the anterior digestive tracts from three families of polychaetes; the Arenicolidae; sedentary detritivores, the Nereidae; errant omnivores and the Nephtyidae; errant carnivores. Comparisons were made with the already well-studied gut anatomy and particularly the pharyngeal anatomy of Arenicola marina, so as to establish a baseline for the other families of polychaetes.Particular attention was focused on the method of pharyngeal stabilisation in relation to food capture and processing.It is universally accepted that ‘coelomic pressure’ has been the primary factor in the eversion of the pharynx and proboscis in polychaete worms. This study challenges this hypothesis. This was done with the use of micro-dissection in anaesthetised polychaetes, electro-stimulation, modern light microscopy methods and novel application of micro-computed x-ray tomography. Investigations using scanningelectron microscopy with freeze dried and freeze fractured specimens have revealed a very unusual interlacing muscle fibre pattern, in the Nephtys pharynx. This suggests that specialised pharyngeal muscles, and particularly a newly named muscle, the ventral coelomic muscle (VCM), in Nephtys, may be a primary mover of proboscis eversion rather than as a consequence of an increase in coelomicpressure. To date, only one other study has recognised this muscle, describing it as a ‘ventral retensor’ that possibly aided in the retraction of the extruded pharynx. The VCM has its origin in the ventral pharynx; it is connected to the anterior intestine, and inserted into the ventral body wall from segment 40-45. This, at least, suggests a stabilising muscle for the pharynx and proximal intestine. The present study’s observations suggest that this muscle is in fact a major player in a primarily muscular driving force for proboscis extrusion. These findings strongly suggest that coelomic pressure increases, associated with proboscis extrusion, are secondary factors in proboscis extrusion in the Nephtyidae. In the Nereidae, it would appear, that the combined action of the powerful longitudinal and circular muscles, together with the firm integrity of the outer body wall, are important players in the muscular extrusion of the pharynx and jaws. Associated increases in coelomic pressure are possibly a secondary effect and linked more with burrowing and body movementand hydrostatic support.In errant polychaetes with relatively short straight guts the anterior sections of the gut should be expected to play an important role in food processing, especially as examination of the intestines of many species, especially Nephtyidae, have revealed many of them to be empty.
机译:在一个多世纪的时间里,人们投入了大量的精力来研究多壳动物如何捕获食物,但是相对缺乏重视,对各种形式的多壳动物的前消化道的消化和功能的处理。这项研究的主要重点是检查三个多毛cha科的前消化道的功能解剖。夜蛾科;久坐的雌蕊,Nereidae;错误的杂食动物和夜蛾科;错误的食肉动物。与已经被充分研究的肠道解剖结构,尤其是槟榔的咽部解剖结构进行了比较,从而为其他多毛families科建立了基线。特别关注与食物捕获和加工有关的咽部稳定方法。普遍认为,“结肠压力”一直是多cha蠕虫咽和鼻外翻的主要因素。这项研究挑战了这一假设。这是通过在麻醉的多毛动物中使用显微解剖,电刺激,现代光学显微镜方法以及微型计算机X射线断层摄影的新应用来完成的。使用扫描电子显微镜对冻干和冻裂的标本进行的调查显示,在Nephtys咽部存在非常不同的交错肌纤维图案。这表明在Nephtys中,咽部特殊的肌肉,尤其是新命名的腹侧腹壁肌肉(VCM)可能是长鼻外翻的主要推动力,而不是腔壁压力升高的结果。迄今为止,只有另一项研究认识到了这种肌肉,称其为“腹肌伸肌”,可能有助于缩回咽部。 VCM起源于腹咽。它连接到前肠,并从40-45段插入腹侧体壁。至少,这表明咽部和近端肠道具有稳定的肌肉。本研究的观察结果表明,这种肌肉实际上是长鼻挤压的主要肌肉驱动力的主要参与者。这些发现有力地表明,与鼻象鼻挤压有关的结肠压力升高是夜蛾科象鼻挤压的次要因素。在Nereidae中,强大的纵向和环形肌肉的结合作用以及体外壁的牢固完整性似乎是咽部和颌骨的肌肉挤压的重要参与者。体腔压力的相关增加可能是次要作用,并且更多地与穴居,身体运动和静水压力支持有关。对于直肠相对较短的错误多毛the,应该预期肠道的前部在食品加工中起重要作用,尤其是在检查时许多物种的肠道(尤其是虎科)的肠道都显示其中许多是空的。

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    Dinley J.;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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