狗尾肠神经节神经元大小和总数的产后相关变化:神经元总数可通过体重和神经节体积预测。

Karina Martinez Gagliardo, Júlio César De Carvalho Balieiro, Romeu Rodrigues De Souza, Antonio Augusto Coppi Maciel Ribeiro
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引用次数: 19

摘要

衰老的主要特征是涉及中枢和周围神经系统的神经元功能的进行性下降。衰老过程伴随着神经元数量或大小的变化。然而,这些数据是有争议的,并且在大型哺乳动物的交感神经节中不太为人所知。因此,本研究旨在研究犬尾侧肠系膜神经节(CMG)在出生后发育的三个不同时期,寻找定性和定量的变化。CMG负责大肠、内肛门括约肌和部分泌尿生殖系统神经支配。选取巴西圣保罗大学兽医学院兽医医院的9只雄性死亡犬,将其分为3个明确的年龄组(1-2个月大、1-2岁和5-10岁)。采用物理定向法结合卡瓦列里原理进行立体学研究。出生后发育伴有非神经元组织数量和神经节体积的增加。此外,随着年龄的增长,神经元总数也增加(从70,140增加到1,204,516),尽管神经元密度呈现相反的趋势(从29,911增加到11,500 mm(-3))。由于本研究中所调查的狗的体重或神经节体积与衰老之间存在相互关系,因此可以通过体重和神经节体积来预测CMG中的神经元总数,从而验证神经元的大小和总数是否同时具有异速生长和衰老规律,即动物的体重和神经节体积或衰老是否影响这些参数。神经元总数的预测值与初始估计值非常接近。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Postnatal-related changes in the size and total number of neurons in the caudal mesenteric ganglion of dogs: total number of neurons can be predicted from body weight and ganglion volume.

Aging is mostly characterized by a progressive decline of neuronal function that involves both the central and the peripheral nervous system. The aging process is accompanied by changes in either the number or the size of neurons. However, these data are controversial and not very well known in the sympathetic ganglia of large mammals. Hence, the present investigation aimed to study the dog's caudal mesenteric ganglion (CMG) in three different periods of postnatal development, searching for qualitative and quantitative alterations. The CMG is responsible for the large intestine, internal anal sphincter, and partially the urogenital system innervations. Nine dead male dogs from the Veterinary Hospital of the College of Veterinary Medicine at University of São Paulo were divided into three well-defined age groups (1-2 months old, 1-2 years old, and 5-10 years old). The stereological study was pursued using the physical disector method combined to the Cavalieri principle. The postnatal development was accompanied by an increase in the nonneuronal tissue amount and in ganglion volume. Additionally, the total number of neurons also increased during aging (from 70,140 to 1,204,516), although the neuronal density showed an opposite trend (from 29,911 to 11,500 mm(-3)). Due to the interrelation between either body weight or ganglion volume and aging in the dogs investigated in this study, it was possible to predict the total number of neurons in CMG using both body weight and ganglion volume in an attempt to verify whether or not size and total number of neurons are both allometrically and aging ruled, i.e., if either the animal's body weight and ganglion volume or aging influence these parameters. The prediction of the total number of neurons was very close to the initially estimated values.

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