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Biology subjects

Martin, J. H.

Publications and source records attributed to Martin, J. H..

5 recordsLinked to original sources

Activity Protects Spinal Premotor Interneurons from Microglial Phagocytosis and Transneuronal Degeneration After Corticospinal Injury

Spinal premotor circuits play a fundamental role in motor control. The corticospinal tract (CST) provides control signals to premotor circuits in the spinal cord, guiding voluntary skilled movements. Unilateral selective lesion of the CST in the medullary pyramidal tract (PTX) produces transneuronal degeneration, whereby Choline Acetyltransferase-positive (ChAT) premotor interneurons contralesionally undergo non-apoptotic degeneration by microglial phagocytosis. Evidence shows that transneuronal degeneration has an activity dependence: MCX inactivation produces transneuronal degeneration and spinal DC neuromodulation after PTX ameliorates it. This study expands our understanding of transneuronal degeneration mechanisms by examining the activity-dependence of degeneration vulnerability and the implications for motor recovery in a mouse model of a complete CST lesion model (bilateral PTX). We address four key unanswered questions: Are Chx10 (VGlut2) interneurons, the largest spinal interneuron class to receive direct synaptic connections from the CST vulnerable to transneuronal degeneration after CST loss; using DREADD neuromodulation, what are effective sources of presynaptic activation for protecting spinal premotor interneurons after CST loss; how are ameliorating transneuronal interneuron degeneration and reducing microglial activation associated; and does effective rescue of interneuron degeneration rescue grip strength after injury? Transneuronal degeneration is a pervasive pathophysiological change injury; CST lesion produces significant Chx10 interneuron loss. Multiple sources of neuronal DREADD activation--motor cortex, reticular formation, and spinal interneurons--are effective in ameliorating transneuronal degeneration. Interneuron rescue is strongly associated with ameliorating inflammation, showing potential causality between interneuron degeneration and inflammation after CST lesion. Finally, rescuing spinal interneurons was associated with restoring function. Our findings demonstrate the interplay between neuronal activity, microglia actions mediating transneuronal degeneration, and motor recovery following CNS injury.

neuroscience↗

Hyperreflexia after corticospinal tract lesion reflects 1A afferent circuit changes not increased KCC2 hyperexcitability

Hyperreflexia is a consequence of spinal cord injury (SCI) and motor system lesions in the brain Two major mechanisms underpinning hyperreflexia have been reported: proprioceptive afferent (PA) circuit changes produced by 1A fiber sprouting, which could enhance reflex signaling, together with reduced GABAergic inhibitory presynaptic regulation (GABApre); and increased intrinsic motor neuron excitability, for example, produced by reduced motor neuron membrane-bound potassium-chloride co-transporter2 (KCC2). Here we examine how selective unilateral CST injury in the medullary pyramid (PTX), which eliminates the CST from one hemisphere, allows for specific investigation of the different mechanisms to determine their contributions to hyperreflexia. We used rate-dependent depression (RDD) of the Hoffmann (H)-reflex for the forelimb and hindlimb 5th-digit abductor muscles to assess hyperreflexia on both the contra-and ipsilesional sides. We compared RDD in naive and unilateral-PTX rats at 7-dpi and 42-dpi, supplemented with additional timepoints to examine hyperreflexia development. Immunohistochemistry was used to identify PA synapses (VGlut1), GABA presynaptic boutons (GABApre), motor neurons (ChAT), and to measure KCC2. Following unilateral PTX, we observed significant hyperreflexia in the contralesional forelimb only. Membrane-bound KCC2 was unchanged in contralesional cervical motor neurons. Whereas both cervical and lumbar motor neurons showed increased PA sprouting contralesionally, there was a concomitant increase in GABApre terminals for the lumbar not cervical cord, which associated with a normal hindlimb H-reflex. Our findings show that KCC2 is disassociated from hyperreflexia in the uniPTX model. Instead, forelimb hyperreflexia can be explained by cervical motor neuron PA sprouting and an uncompensated GABApre regulation.

neuroscience↗

Repeated tDCS at clinically-relevant field intensity can boost concurrent motor learning in rats.

Electric fields used in clinical trials with transcranial direct current stimulation (tDCS) are small, with magnitudes that have yet to demonstrate measurable effects in preclinical animal models. We hypothesized that weak stimulation will nevertheless produce sizable effects, provided that it is applied concurrently with behavioral training, and repeated over multiple sessions. We tested this here in a rodent model of dexterous motor-skill learning. We developed a preparation that allows concurrent stimulation during the performance of a pellet-reaching task in freely behaving rats. The task was automated to minimize experimenter bias. We measured field magnitudes intracranially to calibrate the stimulation current. In this study, only male rats were used. Animals were trained for 20 min with concurrent epicranial tDCS over 10 daily sessions. Behavior was recorded with high-speed video to quantify reaching dynamics. We also measured motor-evoked potentials (MEPs) bilaterally with epidural microstimulation. The new electrode montage enabled stable stimulation over 10 sessions with a field intensity of 2V/m at the motor cortex. The number of successful reaches improved across days of training, and the rate of learning was higher in the anodal group as compared to sham-control animals (F(1)=7.12, p=0.008, N=24). MEPs were not systematically affected by tDCS. Posthoc analysis suggests that tDCS modulated motor learning only for right-pawed animals, improving success of reaching, but limiting stereotypy in these animals. Repeated and concurrent anodal tDCS can boost motor-skill learning at clinically-relevant field intensities. In this animal model the effect interacted with paw preference and was not associated with corticospinal excitability. Significance StatementThe effects of tDCS have been explored in numerous human clinical trials, but the mechanisms of action of weak electric fields remain unclear. In vitro studies show that constant electric fields at 2.5 V/m can enhance the efficacy of synapses undergoing plasticity. This study demonstrates in a rodent model that tDCS of only 2 Vm when applied concurrently to behavioral training can improve motor skill learning, and reduce stereotypy of reaching behavior. These effects accumulated over 10 days of training. Motor evoked potentials (MEP), which are often used to demonstrate plastic effects in humans on a time scale of hours, were not measurably affected by tDCS on this longer time scale.

animal behavior and cognition↗

Sub-chronic elevation in ambient temperature drives alterations to the sperm epigenome and accelerates early embryonic development in mice

Forecasted increases in the prevalence and severity of extreme weather events accompanying changes in climatic behavior pose potential risk to the reproductive capacity of humans and animals of ecological and agricultural significance. While several studies have revealed that heat stress induced by challenges such as testicular insulation can elicit a marked negative effect on the male reproductive system, and particularly the production of spermatozoa, less is known about the immediate impact on male reproductive function following sub-chronic whole-body exposure to elevated ambient temperature. To address this knowledge gap, we exposed unrestrained male mice to heat stress conditions that emulate a heat wave (daily cycle of 8_h at 35{degrees}C followed by 16 h at 25{degrees}C) for a period of seven days. Neither the testes or epididymides of heat exposed male mice exhibited evidence of gross histological change, and similarly, spermatozoa of exposed males retained their functionality and ability to support embryonic development. However, the embryos generated from heat exposed spermatozoa experienced pronounced changes in gene expression linked to acceleration of early embryo development, aberrant blastocyst hatching and increased fetal weight. Such changes were causally associated with an altered sperm small non-coding RNA (sncRNA) profile, such that these developmental phenotypes were recapitulated by microinjection of wild-type embryos sired by control spermatozoa with RNAs extracted from heat exposed spermatozoa. Such data highlight that even a relatively modest excursion in ambient temperature can affect male reproductive function and identify the sperm sncRNA profile as a particular point of vulnerability to this imposed environmental stress. Significance StatementThe fidelity of sperm production underpins successful reproduction yet is highly vulnerable to various forms of environmental challenge, including heat stress. Despite this knowledge, we lack a complete understanding of the immediate impact on male reproduction of whole-body exposure to elevated ambient temperatures such as those encountered during a heatwave. By experimentally emulating heatwave conditions, we demonstrate that the spermatozoa of exposed male mice accumulate changes in their small RNA profile that are causally linked to pronounced changes in embryonic gene expression, accelerated pre-implantation development, aberrant blastocyst hatching, and increased fetal weight. Such data highlight that even a relatively modest alteration in ambient temperature can affect male reproductive function, demonstrating the acute sensitivity of sperm small RNAs to environmental stress.

cell biology↗

Food availability early in life impacts among and within individual variation in behaviour

O_LIThe availability of food during early life has been proposed as a key proximate mechanism for the development of variation in behaviour among and within individuals. C_LIO_LIIndividuals can vary amongst each other in their personality, plasticity and predictability and if an individuals behaviour is correlated across contexts this can lead to behavioural, plasticity and predictability syndromes. C_LIO_LIIn this study, we used a split brood design to raise African clawed frog tadpoles (Xenopus laevis) on a high or low diet in food availability and measured the distance they swam in a familiar and unfamiliar context eight times during their development. C_LIO_LIIn a familiar context, we found that there was an increase in among individual variance in plasticity and predictability in the high food treatment. This shows that when resources are not restricted, individuals are not constrained in the expression of their behaviour at certain phenotypic levels. C_LIO_LIIn an unfamiliar context, we found a different response, with an increase in individual variance in personality in the low but not the high feed tadpoles. As unfamiliar contexts may be riskier, our results highlight that individuals receiving less food may take greater foraging risks in novel contexts. C_LIO_LIAcross contexts, we found a predictability syndrome in the high but not the low feed tadpoles, highlighting that cross-context behaviours can become decoupled in some developmental conditions but remain intact in others. C_LIO_LITogether our findings show that early life conditions contribute to among individual variation in behaviour but that these may only impact the phenotype at specific phenotypic levels and are context specific. C_LIO_LIWe emphasise that having a fundamental understanding of how early development may promote or constrain individual variation can provide a greater understanding of how individuals and populations may respond to novel conditions brought about by anthropogenic activity. C_LI

evolutionary biology↗