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Lazaro-Pena, M.

Publications and source records attributed to Lazaro-Pena, M..

2 recordsLinked to original sources

Homeodomain-interacting protein kinase maintains neuronal homeostasis during normal Caenorhabditis elegans aging and systemically regulates longevity from serotonergic and GABAergic neurons

Aging and the age-associated decline of the proteome is determined in part through neuronal control of evolutionarily conserved transcriptional effectors, which safeguard homeostasis under fluctuating metabolic and stress conditions by regulating an expansive proteostatic network. We have discovered the Caenorhabditis elegans homeodomain-interacting protein kinase (HPK-1) acts as a key transcriptional effector to preserve neuronal integrity, function, and proteostasis during aging. Loss of hpk-1 results in drastic dysregulation in expression of neuronal genes, including genes associated with neuronal aging. During normal aging hpk-1 expression increases throughout the nervous system more broadly than any other kinase. Within the aging nervous system, hpk-1 induction overlaps with key longevity transcription factors, which suggests hpk-1 expression mitigates natural age-associated physiological decline. Consistently, pan-neuronal overexpression of hpk-1 extends longevity, preserves proteostasis both within and outside of the nervous system, and improves stress resistance. Neuronal HPK-1 improves proteostasis through kinase activity. HPK-1 functions cell non-autonomously within serotonergic and GABAergic neurons to improve proteostasis in distal tissues by specifically regulating distinct components of the proteostatic network. Increased serotonergic HPK-1 enhances the heat shock response and survival to acute stress. In contrast, GABAergic HPK-1 induces basal autophagy and extends longevity, which requires mxl-2 (MLX), hlh-30 (TFEB), and daf-16 (FOXO). Our work establishes hpk-1 as a key neuronal transcriptional regulator critical for preservation of neuronal function during aging. Further, these data provide novel insight as to how the nervous system partitions acute and chronic adaptive response pathways to delay aging by maintaining organismal homeostasis.

genetics↗

Neuroendocrine control of the proteostatic network by HPK-1 delays aging

The nervous system systemically coordinates proteostasis to delay organismal aging. However, the neuronal regulatory mechanisms that coordinate cellular anti-aging programs across tissue and cell-types are relatively unknown. In this work, we identify the homeodomain-interacting protein kinase (HPK-1), a transcriptional cofactor, as a novel neuronal component of the proteostatic network: its overexpression produces a paracrine signal to hyper-induce molecular chaperones and a neuroendocrine signal to induce autophagy in peripheral tissues. Neuronal HPK-1 signaling improves proteostasis in distal tissues through neurotransmitters. These pro-longevity modalities are independently regulated within serotonergic and GABAergic neurons, respectively, through distinct adaptive responses, either of which improve proteostasis in a cell non-autonomous manner. Serotonergic HPK-1 activity amplifies the heat shock response and protects the proteome from acute stress, without altering longevity. Conversely, increased GABAergic HPK-1 activity is sufficient to induce autophagy and extend longevity, without altering acute stress survival. Consistently, GABAergic neurons, but not serotonin, is essential for the cell non-autonomous induction of autophagy by neuronal HPK-1. These findings provide novel insight into how the nervous system partitions and coordinates unique adaptive response pathways to delay organismal aging, and reveals a key role for neuronal HPK-1 in regulating the proteostatic network throughout an intact metazoan animal. Significance StatementAging and the age-associated decline of the proteome is determined in part through neuronal control of evolutionarily conserved transcriptional effectors, which safeguard homeostasis under fluctuating metabolic and stress conditions by regulating an expansive proteostatic network in peripheral tissues. How neuronal signaling mechanisms are primed, relayed through an organism, and specific responses are initiated in receiving cell types remain poorly understood. We have discovered that the Caenorhabditis elegans homeodomain-interacting protein kinase (HPK-1) is a novel transcriptional effector that functions within two distinct neuronal cell-types to non-autonomously regulate divergent components of the proteostatic network to enhance stress resistance, improve proteostasis and delay aging.

genetics↗