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1.
Hear Res ; 450: 109070, 2024 09 01.
Article in English | MEDLINE | ID: mdl-38972084

ABSTRACT

Cholinergic signaling is essential to mediate the auditory prepulse inhibition (PPI), an operational measure of sensorimotor gating, that refers to the reduction of the acoustic startle reflex (ASR) when a low-intensity, non-startling acoustic stimulus (the prepulse) is presented just before the onset of the acoustic startle stimulus. The cochlear root neurons (CRNs) are the first cells of the ASR circuit to receive cholinergic inputs from non-olivocochlear neurons of the ventral nucleus of the trapezoid body (VNTB) and subsequently decrease their neuronal activity in response to auditory prepulses. Yet, the contribution of the VNTB-CRNs pathway to the mediation of PPI has not been fully elucidated. In this study, we used the immunotoxin anti-choline acetyltransferase (ChAT)-saporin as well as electrolytic lesions of the medial olivocochlear bundle to selectively eliminate cholinergic VNTB neurons, and then assessed the ASR and PPI paradigms. Retrograde track-tracing experiments were conducted to precisely determine the site of lesioning VNTB neurons projecting to the CRNs. Additionally, the effects of VNTB lesions and the integrity of the auditory pathway were evaluated via auditory brain responses tests, ChAT- and FOS-immunohistochemistry. Consequently, we established three experimental groups: 1) intact control rats (non-lesioned), 2) rats with bilateral lesions of the olivocochlear bundle (OCB-lesioned), and 3) rats with bilateral immunolesions affecting both the olivocochlear bundle and the VNTB (OCB/VNTB-lesioned). All experimental groups underwent ASR and PPI tests at several interstimulus intervals before the lesion and 7, 14, and 21 days after it. Our results show that the ASR amplitude remained unaffected both before and after the lesion across all experimental groups, suggesting that the VNTB does not contribute to the ASR. The%PPI increased across the time points of evaluation in the control and OCB-lesioned groups but not in the OCB/VNTB-lesioned group. At the ISI of 50 ms, the OCB-lesioned group exhibited a significant increase in%PPI (p < 0.01), which did not occur in the OCB/VNTB-lesioned group. Therefore, the ablation of cholinergic non-olivocochlear neurons in the OCB/VNTB-lesioned group suggests that these neurons contribute to the mediation of auditory PPI at the 50 ms ISI through their cholinergic projections to CRNs. Our study strongly reinforces the notion that auditory PPI encompasses a complex mechanism of top-down cholinergic modulation, effectively attenuating the ASR across different interstimulus intervals within multiple pathways.


Subject(s)
Acoustic Stimulation , Auditory Pathways , Prepulse Inhibition , Reflex, Startle , Trapezoid Body , Animals , Prepulse Inhibition/physiology , Male , Trapezoid Body/metabolism , Trapezoid Body/physiology , Auditory Pathways/physiology , Auditory Pathways/metabolism , Rats, Sprague-Dawley , Saporins/metabolism , Choline O-Acetyltransferase/metabolism , Cholinergic Neurons/metabolism , Cholinergic Neurons/physiology , Ribosome Inactivating Proteins, Type 1 , Evoked Potentials, Auditory, Brain Stem , Immunotoxins , Cochlear Nerve/metabolism , Cochlear Nerve/physiology , Rats
2.
Immunol Cell Biol ; 98(3): 187-202, 2020 03.
Article in English | MEDLINE | ID: mdl-31916611

ABSTRACT

The stage-specific embryonic antigen-4 (SSEA-4) is a cell surface glycosphingolipid antigen expressed in early stages of human development. This surface marker is downregulated during the differentiation process but is found re-expressed in several types of tumors, including breast cancer. This feature makes SSEA-4 an attractive target for the development of therapeutic antibodies against tumors. In this work, we first studied the binding and intracellular fate of the monoclonal antibody MC-813-70 directed against SSEA-4. MC-813-70 was found to be rapidly internalized into triple-negative breast cancer cells following binding to its target at the plasma membrane, and to accumulate in acidic organelles, most likely lysosomes. Given the internalization feature of MC-813-70, we next tested whether the antibody was able to selectively deliver the saporin toxin inside SSEA-4-expressing cells. Results show that the immunotoxin complex was properly endocytosed and able to reduce cell viability of breast cancer cells in vitro, either alone or in combination with chemotherapeutic drugs. Our findings indicate that the MC-813-70 antibody has the potential to be developed as an alternative targeted therapeutic agent for cancer cells expressing the SSEA-4 glycolipid.


Subject(s)
Immunotoxins/pharmacology , Saporins/pharmacology , Stage-Specific Embryonic Antigens/immunology , Triple Negative Breast Neoplasms/immunology , Adenocarcinoma/drug therapy , Adenocarcinoma/immunology , Adenocarcinoma/metabolism , Antibodies, Monoclonal/immunology , Antibodies, Monoclonal/metabolism , Cell Line, Tumor , Cell Proliferation/drug effects , Cell Survival/drug effects , Endocytosis/drug effects , Female , Humans , Immunotoxins/metabolism , Lysosomes/drug effects , Lysosomes/metabolism , Saporins/metabolism , Triple Negative Breast Neoplasms/drug therapy , Triple Negative Breast Neoplasms/metabolism
3.
Mol Neurobiol ; 56(8): 5715-5728, 2019 Aug.
Article in English | MEDLINE | ID: mdl-30674034

ABSTRACT

Small nerve fibers that bind the isolectin B4 (IB4+ C-fibers) are a subpopulation of primary afferent neurons that are involved in nociceptive sensory transduction and do not express the neuropeptides substance P and calcitonin-gene related peptide (CGRP). Several studies have attempted to elucidate the functional role of IB4+-nociceptors in different models of pain. However, a functional characterization of the non-peptidergic nociceptors in mediating mechanical inflammatory hypersensitivity in mice is still lacking. To this end, in the present study, the neurotoxin IB4-Saporin (IB4-Sap) was employed to ablate non-peptidergic C-fibers. Firstly, we showed that intrathecal (i.t.) administration of IB4-Sap in mice depleted non-peptidergic C-fibers, since it decreased the expression of purinoceptor 3 (P2X3) and transient receptor potential cation channel subfamily V member 1 (TRPV1) in the dorsal root ganglia (DRGs) as well as IB4 labelling in the spinal cord. Non-peptidergic C-fibers depletion did not alter the mechanical nociceptive threshold, but it inhibited the mechanical inflammatory hypersensitivity induced by glial cell-derived neurotrophic factor (GDNF), but not nerve growth factor (NGF). Depletion of non-peptidergic C-fibers abrogated mechanical inflammatory hypersensitivity induced by carrageenan. Finally, it was found that the inflammatory mediators PGE2 and epinephrine produced a mechanical inflammatory hypersensitivity that was also blocked by depletion of non-peptidergic C-fibers. These data suggest that IB4-positive nociceptive nerve fibers are not involved in normal mechanical nociception but are sensitised by inflammatory stimuli and play a crucial role in mediating mechanical inflammatory hypersensitivity.


Subject(s)
Hypersensitivity/pathology , Inflammation/pathology , Nociceptors/pathology , Peptides/metabolism , Animals , Dinoprostone/metabolism , Glial Cell Line-Derived Neurotrophic Factor/pharmacology , Hypersensitivity/complications , Hypersensitivity/physiopathology , Inflammation/complications , Inflammation/physiopathology , Lectins/pharmacology , Male , Mice, Inbred C57BL , Nerve Fibers, Unmyelinated/metabolism , Nociception/drug effects , Nociceptors/drug effects , Pain/complications , Pain/physiopathology , Saporins/pharmacology
4.
Mol Neurobiol, v. 56, n. 8, p. 5715-5728, ago. 2019
Article in English | Sec. Est. Saúde SP, SESSP-IBPROD, Sec. Est. Saúde SP | ID: bud-2801

ABSTRACT

Small nerve fibers that bind the isolectin B4 (IB4+ C-fibers) are a subpopulation of primary afferent neurons that are involved in nociceptive sensory transduction and do not express the neuropeptides substance P and calcitonin-gene related peptide (CGRP). Several studies have attempted to elucidate the functional role of IB4+-nociceptors in different models of pain. However, a functional characterization of the non-peptidergic nociceptors in mediating mechanical inflammatory hypersensitivity in mice is still lacking. To this end, in the present study, the neurotoxin IB4-Saporin (IB4-Sap) was employed to ablate non-peptidergic C-fibers. Firstly, we showed that intrathecal (i.t.) administration of IB4-Sap in mice depleted non-peptidergic C-fibers, since it decreased the expression of purinoceptor 3 (P2X3) and transient receptor potential cation channel subfamily V member 1 (TRPV1) in the dorsal root ganglia (DRGs) as well as IB4 labelling in the spinal cord. Non-peptidergic C-fibers depletion did not alter the mechanical nociceptive threshold, but it inhibited the mechanical inflammatory hypersensitivity induced by glial cell-derived neurotrophic factor (GDNF), but not nerve growth factor (NGF). Depletion of non-peptidergic C-fibers abrogated mechanical inflammatory hypersensitivity induced by carrageenan. Finally, it was found that the inflammatory mediators PGE2 and epinephrine produced a mechanical inflammatory hypersensitivity that was also blocked by depletion of non-peptidergic C-fibers. These data suggest that IB4-positive nociceptive nerve fibers are not involved in normal mechanical nociception but are sensitised by inflammatory stimuli and play a crucial role in mediating mechanical inflammatory hypersensitivity.

5.
Gac. méd. Méx ; Gac. méd. Méx;143(5): 421-425, sept.-oct. 2007. ilus
Article in Spanish | LILACS | ID: lil-568643

ABSTRACT

La narcolepsia es un trastorno del sueño caracterizado por excesiva somnolencia diurna, transiciones prematuras de la vigila al sueño de movimientos oculares rápidos, alucinaciones hipnagógicas y cataplexia. Evidencias experimentales indican que la narcolepsia en humanos es una enfermedad neurodegenerativa asociada con la pérdida de neuronas hipocretinérgicas localizadas en el hipotálamo lateral. Además, se sabe que los pacientes narcolépticos presentan reducción significativa en la concentración de hipocretinas (HCRT) en el líquido cefalorraquídeo. Nuestro laboratorio ha generado un nuevo modelo experimental de narcolepsia en rata, que nos permite estudiar la enfermedad desde un enfoque histológico y neuroquímico. Hemos demostrado que la toxina hipocretina 2/saporina destruye selectivamente las neuronas hipocretinérgicas. Además, la pérdida de estas neuronas induce un cuadro conductual similar al observado en otros modelos experimentales o narcolepsia en humanos. En la presente revisión abordamos aspectos generales de la narcolepsia, del sistema hipocretinérgico, así como de los modelos experimentales de narcolepsia y el uso de los transplantes como alternativa para tratar la enfermedad.


Narcolepsy is a chronic disease characterized by excessive somnolence, abrupt transitions from wakefulness to rapid eye movement sleep stage and cataplexy. Experimental evidence show that narcolepsy in humans is a neurodegenerative disease associated with the lost of hypocretin (HCRT) neurons in the lateral hypothalamus. Narcoleptic patients also display a significant diminution in HCRT contents of cerebrospinal fluid. In order to study narcolepsy, several experimental models have been developed. Murine and canine models currently allow us to study this disease. Our laboratory has developed a new experimental rat model of narcolepsy. This model allows us to study the disease from a histological and neurochemical perspective. Elsewhere we have reported that the use of the toxin hypocretin2/saporine (HCRT2/ SAP) selectively destroys hypocretinergic neurons. The loss of these neurons induces a similar behavioural profile as the one observed in other experimental models of narcolepsy. In the present review we describe an overview on narcolepsy, the hypocretinergic system, experimental models in narcolepsy and the use of transplants as an alternative therapeutic tool.


Subject(s)
Humans , Animals , Narcolepsy/etiology , Neuropeptides/physiology , Intracellular Signaling Peptides and Proteins/physiology
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