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Veitch, I.

Publications and source records attributed to Veitch, I..

3 recordsLinked to original sources

Fertility reversibly modulates C. elegans behavior via gonad-nervous system signaling

While the external cues that generate behavioral responses have been extensively studied, behavioral changes in response to internal stimuli are much less understood. C. elegans hermaphrodites are self-fertile until they exhaust their supply of self-sperm, after which time they can only produce more progeny via mating with a male animal. Fertile hermaphrodites are less likely to be mated by males than sperm-exhausted hermaphrodites. We report that sperm-dependent hermaphrodite escape is facilitated by an aversive response to physical contact (touch stimulus) by males, specifically male turns around the hermaphrodite nose and male contact at the vulva. Using germline masculinizing and feminizing mutants, we found that sperm are both necessary and sufficient to induce contact-dependent mating evasion. Surprisingly, loss of the entire somatic gonad resulted in ectopic evasion behavior, via an oppositional monoaminergic signal. Hermaphrodites lacking the HSN neuron are constitutively receptive to male mating touch both at the vulva and at the nose, suggesting that HSN transmits fertility status to the nervous system. HSN also modulates other downstream circuits, such as the nose touch sensory neurons ASH and FLP, which are required for evasion of male contact at the nose. Taken together, we identified a signaling cascade wherein presence vs. absence of sperm is transmitted via monoaminergic signaling from the somatic gonad to the nervous system. This demonstrates how changes in internal state, such as fertility status, act to modulate neural circuits and alter the valence of sensory input.

neuroscience↗

Novel neonatal hypoxic-ischemic model demonstrates neuroinflammation-associated memory deficits without neuronal loss

BackgroundNeonatal global hypoxic-ischemic cerebral injury is a leading cause of infant mortality and lifelong disability. Current rodent models do not replicate neonatal global cerebral ischemia (nGCI) and reperfusion injury. Here, we developed and characterized a rodent model of cardiac arrest and cardiopulmonary reperfusion (CA/CPR) to induce nGCI, producing acute systemic ischemia, mild neuronal injury, white matter alterations, and motor and memory deficits. MethodsRat pups underwent CA/CPR or sham procedure on postnatal day 9-11. CA/CPR in rat pups was performed under anesthesia while intubated. Asystole was induced with intravenous (IV) KCl and maintained for 10-14 minutes. Resuscitation included oxygen ventilation, chest compressions, and IV epinephrine. ResultsTwelve minutes of asystole provided an optimal balance between survival and systemic injury. Behavioral testing on postoperative day (POD) 7 revealed memory impairments. Despite the absence of overt neuronal death in the hippocampus or cerebellum, we observed evidence of glial activation and white matter alterations. ConclusionThis novel rodent model of nGCI addresses limitations in existing models while offering clinically relevant features to support future mechanistic and translational research. ImpactO_LIThis study validates cardiac arrest and cardiopulmonary resuscitation (CA/CPR) as a novel model for neonatal global cerebral ischemia (nGCI), complementing existing rodent models of unilateral and permanent injury by enabling investigation of both global ischemia and reperfusion injury. C_LIO_LInGCI results in memory impairment in the absence of overt neuronal cell death. Functional deficits are associated with neuroinflammatory responses in the hippocampus, white matter, and cerebellum. C_LIO_LINeonatal CA/CPR induces global cerebral ischemia which uniquely allows investigation of hindbrain structures, such as cerebellum, which are typically spared in existing rodent models of neonatal hypoxia-ischemia. C_LI

neuroscience↗

Endogenous recovery of hippocampal function following global cerebral ischemia in juvenile female mice is influenced by neuroinflammation and circulating sex hormones.

Cardiac arrest-induced global cerebral ischemia (GCI) in childhood often results in learning and memory deficits. We previously demonstrated in a murine cardiac arrest and cardiopulmonary resuscitation (CA/CPR) mouse model that a cellular mechanism of learning and memory, long-term potentiation (LTP), is acutely impaired in the hippocampus of juvenile males, correlating with deficits in memory tasks. However, little is known regarding plasticity impairments in juvenile females. We performed CA/CPR in juvenile (P21-25) female mice and used slice electrophysiology and hippocampal dependent behavior to assess hippocampal function. LTP was and contextual fear were impaired 7-days after GCI and endogenously recovered by 30-days. LTP remained impaired at 30 days in ovariectomized females, suggesting the surge in gonadal sex hormones during puberty mediates endogenous recovery. Unlike juvenile males, recovery of LTP in juvenile females was not associated with BDNF expression. NanoString transcriptional analysis revealed a potential role of neuroinflammatory processes, and specifically Cd68 pathways, in LTP impairment and hormone-dependent recovery. We were able to restore LTP in ovariectomized females with chronic and acute PPT administration, implicating estrogen receptor alpha in recovery mechanisms. This study supports a mechanism of endogenous LTP recovery after GCI in juvenile female mice which differs mechanistically from juvenile males and does not occur in adults of either sex.

neuroscience↗