scholarly journals The microanatomy of the central nervous system and brain of the Indo-Pacific seahorse, Hippocampus barbouri, during development

2020 ◽  
Vol 37 ◽  
pp. 1-11
Author(s):  
Sinlapachai Senarat ◽  
Jes Kettratad ◽  
Gen Kaneko ◽  
Thatpon Kamnurdnin ◽  
Chanyut Sudtongkong

The central nervous system (CNS) of Teleostei is a complex system of self-governance and its morphology is reflected in the physiological and reproductive behaviors. The Indo-Pacific seahorse, Hippocampus barbouri Jordan & Richardson, 1908, is a new candidate species for aquaculture in Thailand. In this study, we investigated the brain morphology of H. barbouri across various developmental windows. Light microscopic observations of adult brains revealed a large optic tectum in the mesencephalon, whereas the cerebral hemispheres and the cerebellum are of medium size. The detailed brain structures were generally similar to those of other teleosts; however, only five distinct layers were present in the optic tectum, including the stratum marginale, stratum opticum, stratum album central, stratum griseum central, and stratum periventriculae, versus six layers observed in other fish. One day after birth (1 DAB) the brain was a packed structure without any clear sub-structures. The number of capillaries in the optic tectum began to increase at 6 DAB, and at 14 DAB several features, including small blood vessels in the optic tectum and Purkinje cells, became noticeable. By 35 DAB, the optic tectum became highly vascularized and included five layers. Additionally, large Purkinje cells were developed in the cerebellum. Based on the brain development pattern, we speculate that the predatory ability of this fish starts to develop from 6 to 14 days after birth.

2020 ◽  
Vol 38 (4) ◽  
pp. 293-298 ◽  
Author(s):  
Juan R. Malagelada

Background: Interactions between brain and gut have been suspected for centuries but our understanding of the neural centers and neurohormonal links that establish bidirectional regulatory communication between these 2 body systems has advanced significantly in the last decades. The label “brain-gut axis” designates a useful but deceivingly simple concept, since the mechanistic complexity of brain-gut interaction is enormous. Summary: The significance of the brain-gut axis is perhaps best conceived as “a team” since both systems are physiologically coordinated to ensure a healthy status. However, under pathophysiological conditions, the axis also contributes substantially to distort homeostasis. For instance, normal signals emanating from the gut may be inappropriately received and interpreted by the central nervous system that responds by inadequately recruiting other brain structures and generate both symptoms and commands that disturb normal gut activity. Key Messages: Thus, at each end and in the brain-gut connecting routes, there is the potential for altering perceived and unperceived sensations and further impinging on normal function.


Author(s):  
Ashot Karepetyan

Epilepsy is a fairly common disease of the central nervous system, and it quite often appears in medical practice. The basis of this disease is the increased excitability of certain parts of the brain that occurs as a result of injuries, strokes, neoplasms, and some hereditary diseases. In the normal state, transmission between neurons is carried out using pulses, and in the case of a lesion, it can be a source of additional neuropulses, which leads to discoordinated excitation of the involved brain structures.


2020 ◽  
Vol 66 (3) ◽  
pp. 208-215
Author(s):  
M.I. Airapetov ◽  
S.O. Eresko ◽  
A.A. Lebedev ◽  
E.R. Bychkov ◽  
P.D. Shabanov

Alcohol use is a global socially significant problem that remains one of the leading risk factors for disability and premature death. One of the main pathological characteristics of alcoholism is the loss of cognitive control over the amount of consumed alcohol. Growing body of evidence suggests that alterations of neuroimmune communication occurring in the brain during prolonged alcoholization are one of the main mechanisms responsible for the development of this pathology. Ethanol consumption leads to activation of neuroimmune signaling in the central nervous system through many types of Toll-like receptors (TLRs), as well as the release of their endogenous agonists (HMGB1 protein, S100 protein, heat shock proteins, extracellular matrix breakdown proteins). Activation of TLRs triggers intracellular molecular cascades leading to increased expression of the innate immune system genes, particularly proinflammatory cytokines, subsequently causing the development of a persistent neuroinflammatory process in the central nervous system, which results in massive death of neurons and glial cells in the brain structures, which are primarily associated with the development of a pathological craving for alcohol. In addition, some subtypes of TLRs are capable of forming heterodimers with neuropeptide receptors (corticoliberin, orexin, ghrelin receptors), and may also have other functional relationships.


2016 ◽  
Vol 14 (3) ◽  
Author(s):  
Thiago N. A. Pereira ◽  
Ricardo M. C. Castro

ABSTRACT The brain of Brycon orbignyanus is described as a model for future studies of the gross morphology of the central nervous system in Characiformes. The study of brain gross morphology of 48 distinct taxa of Characiformes, one of Cypriniformes, two of Siluriformes and two of Gymnotiformes, allowed us to propose, for the first time, six putative brain synapomorphies for the Characiformes and also two possibly unique gross brain morphology characters for the Siluriformes. A detailed protocol for the extraction of the brain in Characiformes is also provided.


2019 ◽  
Vol 47 ◽  
Author(s):  
Carolina Da Fonseca Sapin ◽  
Cristina Gevehr Fernandes ◽  
Márcia De Oliveira Nobre ◽  
Fabianne Borelli Grecco

Background: The prevalence of intracranial neoplasms in dogs represents 2.1 to 4.0% of the cases. Brain tumors may be primary or metastatic. The objective of this study was to describe two cases of intra encephalic neoplasia in elderly dogs received for necropsy by the Veterinary Oncology Service in the Federal University of Pelotas.Cases: Case 1: A 12-year-old female canine, without breed and medium size, was received for necropsy. The animal has had behavioral changes. Macroscopic examination of the encephalus revealed asymmetry and congestion. The organs were collected and fixed in 10% formalin. In the brain cleavage we noticed an extensive brown-gray mass with reddish areas, expansive, moderately demarcated, soft to cut and discrete hydrocephalus. Serial fragments of the brain and fragments of the organs were sent for processing. The slides were stained with the hematoxylin and eosin technique for histopathological analysis. At the microscopic examination, cuboidal cells were observed in the encephalus sometimes in acinar arrangements, of extensive and very limited pattern, diagnosed as ependymoma. Case 2: It is a 15-year-old, female poodle dog, with several tumors. During necropsy multiple subcutaneous nodules, mesentery, intestinal serosa, stomach and liver were noticed. At the cut these were firm and whitish. No macroscopic changes were observed in the other organs. Fragments of organs and brain were collected and a serial section of the encephalus was performed for further processing and histological analysis. In the histopathological analysis the masses were constituted by proliferation of sometimes rounded cells, elongated, with rounded nuclei and eosinophilic cytoplasm, allowing the diagnosis of mesothelioma. The same cell pattern was observed in other organs. In the frontal cortex of the encephalus there were small foci of cells similar to those observed in the mesentery, as well as metastatic emboli in the meningeal and encephalic vessels, characterizing the diagnosis of metastatic mesothelioma.Discussion: Neoplasms of the central nervous system may be primary or metastatic. The ependymoma observed in case 1 was only diagnosed after visualization of the encephalic mass during necropsy, pointing to the importance of postmortem examination. Brain neoplasms in dogs occur with a frequency and variety similar to that of humans. Most of these are found in older dogs, and 95% of those affected are over five years of age. One situation that may occur in ependymomas is the development of obstructive hydrocephalus by the expansion of the neoplasm into the ventricular system. The animal studied in case 1 presented behavioral changes for weeks before death, and at necropsy ventricular dilation was evidenced, suggesting that hydrocephalus had occurred and the behavioral changes due to tumor localization. Metastatic brain neoplasms occur due to the hematogenous spread of many tumors. The species in which the metastatic neoplasms are most commonly described is the canine. Metastases of mesotheliomas in the central nervous system are rare, which reinforces the need for a thorough postmortem examination, as evidenced in the second case of this study, since the animal did not manifest clinically signs of neurological involvement and the metastasis was only identified microscopically by serial cuts of the encephalon. It can be concluded that detailed, systematic and serial post-mortem examination of the central nervous system should be part of the diagnostic routine even if no clinical neurological signs are evident. The reports presented here are of importance since they are considered rare diagnoses of primary and metastatic brain tumors.


Author(s):  
S.S. Spicer ◽  
B.A. Schulte

Generation of monoclonal antibodies (MAbs) against tissue antigens has yielded several (VC1.1, HNK- 1, L2, 4F4 and anti-leu 7) which recognize the unique sugar epitope, glucuronyl 3-sulfate (Glc A3- SO4). In the central nervous system, these MAbs have demonstrated Glc A3-SO4 at the surface of neurons in the cerebral cortex, the cerebellum, the retina and other widespread regions of the brain.Here we describe the distribution of Glc A3-SO4 in the peripheral nervous system as determined by immunostaining with a MAb (VC 1.1) developed against antigen in the cat visual cortex. Outside the central nervous system, immunoreactivity was observed only in peripheral terminals of selected sensory nerves conducting transduction signals for touch, hearing, balance and taste. On the glassy membrane of the sinus hair in murine nasal skin, just deep to the ringwurt, VC 1.1 delineated an intensely stained, plaque-like area (Fig. 1). This previously unrecognized structure of the nasal vibrissae presumably serves as a tactile end organ and to our knowledge is not demonstrable by means other than its selective immunopositivity with VC1.1 and its appearance as a densely fibrillar area in H&E stained sections.


2018 ◽  
Vol 23 (1) ◽  
pp. 10-13
Author(s):  
James B. Talmage ◽  
Jay Blaisdell

Abstract Injuries that affect the central nervous system (CNS) can be catastrophic because they involve the brain or spinal cord, and determining the underlying clinical cause of impairment is essential in using the AMA Guides to the Evaluation of Permanent Impairment (AMA Guides), in part because the AMA Guides addresses neurological impairment in several chapters. Unlike the musculoskeletal chapters, Chapter 13, The Central and Peripheral Nervous System, does not use grades, grade modifiers, and a net adjustment formula; rather the chapter uses an approach that is similar to that in prior editions of the AMA Guides. The following steps can be used to perform a CNS rating: 1) evaluate all four major categories of cerebral impairment, and choose the one that is most severe; 2) rate the single most severe cerebral impairment of the four major categories; 3) rate all other impairments that are due to neurogenic problems; and 4) combine the rating of the single most severe category of cerebral impairment with the ratings of all other impairments. Because some neurological dysfunctions are rated elsewhere in the AMA Guides, Sixth Edition, the evaluator may consult Table 13-1 to verify the appropriate chapter to use.


2018 ◽  
Vol 25 (28) ◽  
pp. 3333-3352 ◽  
Author(s):  
Natalia Pessoa Rocha ◽  
Ana Cristina Simoes e Silva ◽  
Thiago Ruiz Rodrigues Prestes ◽  
Victor Feracin ◽  
Caroline Amaral Machado ◽  
...  

Background: The Renin-Angiotensin System (RAS) is a key regulator of cardiovascular and renal homeostasis, but also plays important roles in mediating physiological functions in the central nervous system (CNS). The effects of the RAS were classically described as mediated by angiotensin (Ang) II via angiotensin type 1 (AT1) receptors. However, another arm of the RAS formed by the angiotensin converting enzyme 2 (ACE2), Ang-(1-7) and the Mas receptor has been a matter of investigation due to its important physiological roles, usually counterbalancing the classical effects exerted by Ang II. Objective: We aim to provide an overview of effects elicited by the RAS, especially Ang-(1-7), in the brain. We also aim to discuss the therapeutic potential for neuropsychiatric disorders for the modulation of RAS. Method: We carried out an extensive literature search in PubMed central. Results: Within the brain, Ang-(1-7) contributes to the regulation of blood pressure by acting at regions that control cardiovascular functions. In contrast with Ang II, Ang-(1-7) improves baroreflex sensitivity and plays an inhibitory role in hypothalamic noradrenergic neurotransmission. Ang-(1-7) not only exerts effects related to blood pressure regulation, but also acts as a neuroprotective component of the RAS, for instance, by reducing cerebral infarct size, inflammation, oxidative stress and neuronal apoptosis. Conclusion: Pre-clinical evidence supports a relevant role for ACE2/Ang-(1-7)/Mas receptor axis in several neuropsychiatric conditions, including stress-related and mood disorders, cerebrovascular ischemic and hemorrhagic lesions and neurodegenerative diseases. However, very few data are available regarding the ACE2/Ang-(1-7)/Mas receptor axis in human CNS.


Author(s):  
Asfree Gwanyanya ◽  
Christie Nicole Godsmark ◽  
Roisin Kelly-Laubscher

Abstract: Ethanolamine is a bioactive molecule found in several cells, including those in the central nervous system (CNS). In the brain, ethanolamine and ethanolamine-related molecules have emerged as prodrug moieties that can promote drug movement across the blood-brain barrier. This improvement in the ability to target drugs to the brain may also mean that in the process ethanolamine concentrations in the brain are increased enough for ethanolamine to exert its own neurological ac-tions. Ethanolamine and its associated products have various positive functions ranging from cell signaling to molecular storage, and alterations in their levels have been linked to neurodegenerative conditions such as Alzheimer’s disease. This mini-review focuses on the effects of ethanolamine in the CNS and highlights the possible implications of these effects for drug design.


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