Search bioRxiv⌕ Search

Biology subjects

Segura-Chama, P.

Publications and source records attributed to Segura-Chama, P..

2 recordsLinked to original sources

PACAPergic BAC engages basolateral amygdalar and anterodorsal thalamic networks during looming-threat learning and memory in a labyrinth

The bed nucleus of the anterior commissure (BAC) is a small pituitary adenylate cyclase-activating polypeptide (PACAP)-rich glutamatergic cell population located at the intersection of the anterior commissure, stria terminalis, stria medullaris, and fornix. Here, we provide functional neuroanatomical characterization of the BAC using PACAP-Cre mice and Cre-dependent viral tracing. BAC axons traverse these major forebrain conduits to engage distributed limbic and diencephalic networks, with dense innervation of the posterior basolateral amygdala (pBLA) and anterior dorsal thalamic nucleus (AD), both implicated in emotional processing and spatial orientation. To determine the functional significance of the BAC, we developed a novel looming-threat memory test (LTMT) paradigm in which mice learned the location of a shelter within a dual-maze labyrinth before exposure to an overhead looming stimulus. Chemogenetic inhibition of BAC PACAP neurons impaired shelter-directed escape, increased freezing behavior, prolonged escape trajectories, and disrupted efficient safety-seeking responses. Selective deletion of PACAP from BAC neurons also blocked key aspects of the looming-induced behavioral phenotype. Fos mapping revealed robust neuronal activation by the looming stimulus, within the AD, pBLA, and dorsal periaqueductal gray (dPAG). BAC silencing blocked Fos induction. PACAPBAC depletion blocked fos induction in AD, but not in pBLA or dPAG. Preliminary ex-vivo recordings further indicated that PACAP modulates the intrinsic excitability of AD (and pBLA) neurons. Together, these findings identify the BAC as a previously unrecognized PACAPergic forebrain hub that links emotional and spatial-orientation networks to coordinate looming-threat learning, memory, and adaptive defensive behavior.

neuroscience↗

Developmental programming of adrenal chromaffin cell connexin plasticity by neonatal maternal separation

Adrenal chromaffin cells are key effectors of the sympathoadrenal response and play a central role in the organisms adaptation to environmental and physiological challenges. While cholinergic and pituitary adenylate cyclase-activating polypeptide (PACAP)-dependent mechanisms have long been recognized as major regulators of catecholamine secretion, increasing evidence indicates that connexin-mediated gap junctional communication provides an additional and highly dynamic level of control. Whether early-life experience modifies the adult capacity of chromaffin-cell networks to undergo stress-induced connexin remodeling remains unclear. Here, we examined adrenal medullary connexin expression in adult rats exposed to neonatal maternal separation (MS; 3 h daily, postnatal days 2-15) and later challenged with an 8-day unpredictable mild stress (UMS) protocol. Under basal adult conditions, MS did not produce an overt change in adrenal medullary Cx36 or Cx43 immunoreactivity relative to animal-facility-reared controls. In contrast, UMS increased connexin immunoreactivity in the adrenal medulla, and this response was amplified in animals with a history of MS. MS+UMS animals also displayed enhanced corticosterone responses to acute restraint stress. These findings suggest that neonatal MS does not impose a constitutively altered adult chromaffin-cell phenotype, but instead primes the future stress responsiveness of adrenal medullary connexin remodeling. We propose that chromaffin-cell gap junctions represent a substrate sensitive to stress history, through which developmental experience may influence sympathoadrenal and endocrine adaptation in adulthood.

physiology↗