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Lamont, D. J.

Publications and source records attributed to Lamont, D. J..

3 recordsLinked to original sources

An integrated stress response-independent role of GCN2 prevents excessive ribosome biogenesis and mRNA translation

The Integrated Stress Response (ISR) is a corrective physiological program to restore cellular homeostasis that is based on the attenuation of global protein synthesis and a resource-enhancing transcriptional programme. GCN2 is the oldest of four kinases that are activated by diverse cellular stresses to trigger the ISR and acts as the primary responder to amino acid shortage and ribosome collisions. Here, using a broad multi-omic approach, we uncover an ISR-independent role of GCN2. GCN2 inhibition or depletion in the absence of discernible stress causes excessive protein synthesis and ribosome biogenesis, perturbs the cellular translatome, and results in a dynamic and broad loss of metabolic homeostasis. Cancer cells that rely on GCN2 to keep protein synthesis in check under conditions of full nutrient availability depend on GCN2 for survival and unrestricted tumour growth. Our observations define an ISR-independent role of GCN2 in regulating the cellular proteome and translatome and suggest new avenues for cancer therapies based on unleashing excessive mRNA translation.

cancer biology↗

G51D mutation of the endogenous rat Snca gene disrupts synaptic localisation of α-synuclein priming for Lewy-like pathology

Point mutations in the SNCA gene, encoding -synuclein (Syn), are a known cause of familial Parkinsons disease. The G51D mutation causes early onset neurodegeneration with complex pathology. We used CRISPR/Cas9 in rats to introduce the G51D mutation into the endogenous Snca gene. Co-localisation immunostaining studies with synaptic proteins showed that SynG51D protein is no longer efficiently localised to synapses. Furthermore, biochemical isolation of synaptosomes from rat cortex demonstrated a significant depletion of Syn in SncaG51D/+ and SncaG51D/G51D rats. Unbiased proteomic investigation of the cortex identified significant synaptic dysregulation in SncaG51D/G51D animals. Finally, we compared the propensity for Lewy-like pathology of Snca+/+ and SncaG51D/G51D rats by stereotaxically delivering Syn pre-formed fibrils (PFFs) into the pre-frontal cortex. At an early time-point, 6 weeks post-injection, we observed discrete Lewy-like structures positive for phosphoserine-129-Syn (pS129-Syn) only in SncaG51D/G51D brains. At 26 weeks post-injection of PFFs SncaG51D/G51D brains exhibited intense, discrete pS129-Syn-positive structures, while Snca+/+ brains exhibited diffuse pS129-Syn immunostaining. Quantification of discrete pS129-Syn-positive structures revealed the striatum of SncaG51D/G51D rats had significantly more Lewy-like pathology than Snca+/+ rats. In summary, this novel SncaG51D rat model exhibits molecular characteristics of early synaptic dysfunction and is primed for Syn pathology.

neuroscience↗

Necroptosis inhibition counteracts axonal degeneration, cognitive decline and key hallmarks of aging, promoting brain rejuvenation.

Age is the main risk factor for the development of neurodegenerative diseases. In the aged brain, axonal degeneration is an early pathological event, preceding neuronal dysfunction, and cognitive disabilities in humans, primates, rodents, and invertebrates. Necroptosis mediates degeneration of injured axons, but whether necroptosis triggers neurodegeneration and cognitive impairment along aging is unknown. Here we show that the loss of the necroptotic effector Mlkl was sufficient to delay age-associated axonal degeneration and neuroinflammation, protecting against decreased synaptic transmission and memory decline in aged mice. Moreover, short-term pharmacologic inhibition of necroptosis in aged mice reverted structural and functional hippocampal impairment, both at the electrophysiological and behavioral level. Finally, a quantitative proteomic analysis revealed that necroptosis inhibition leads to an overall improvement of the aged hippocampal proteome, including a subclass of molecular biofunctions associated with brain rejuvenation, such as long-term potentiation and synaptic plasticity. Our results demonstrate that necroptosis contributes to the age-dependent brain degeneration, disturbing hippocampal neuronal connectivity, and cognitive function. Therefore, necroptosis inhibition constitutes a potential geroprotective strategy to treat age-related disabilities associated with memory impairment and cognitive decline.

neuroscience↗