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Hawkins, M. R.

Publications and source records attributed to Hawkins, M. R..

2 recordsLinked to original sources

Dim light at night impacts circadian rhythms and Alzheimer's disease-like neuroinflammation and neuropathology in humanized APP SAA knock-in mice

Artificial light at night (light pollution) is widespread but understudied in the context of Alzheimers disease (AD). Sleep and circadian disruption have been linked to amyloid-{beta} (A{beta}) accumulation and neuroinflammation, but whether dim light at night (dLAN) modifies these processes remains unclear. We tested whether chronic dLAN exposure (8 lux during the dark phase, 8 weeks) alters circadian rhythms, amyloid pathology, and neuroinflammation in 12-13 month-old humanized APP knock-in (KI) mice. hAPPSAA KI mice, which develop plaques, were compared with hAPPWT KI controls carrying only a humanized APP sequence. dLAN reduced circadian rhythm amplitude and stability while increasing fragmentation in both genotypes within two weeks. In hAPPSAA KI mice, dLAN modestly increased hippocampal plaque burden and soluble neocortical A{beta}. Astrocyte reactivity was elevated by genotype but not altered by nighttime light exposure. In contrast, microglial markers (CD45, MHCII) were increased with dLAN with CD45+ area elevated in hippocampus, and MHCII+ cell counts greater in the cortex and hippocampus of hAPPSAA KI mice. There were also distinct spatial responses between the microglia markers suggesting that dLAN primes microglia toward an antigen-presenting phenotype (MHCII) in the presence of A{beta}. Yet, the microglia/macrophage priming was not associated with amplified cytokine or chemokine levels at the 8-week dLAN exposure timepoint in the brain. These findings add to growing evidence that nighttime light exposure can disrupt circadian and immune regulation, and suggest that environmental light pollution should be further explored as a modifiable factor contributing to Alzheimers disease progression. Statement of SignificanceLight at night is a common feature of modern life, yet its influence on Alzheimers disease remains poorly understood. We show that dim light at night disrupts circadian rhythms, modestly increases amyloid pathology, and shifts microglia toward an antigen-presenting state in an amyloid-prone model. These findings identify light at night as a modifiable factor that may worsen risk or progression of neurodegenerative disease. A critical gap is whether circadian and immune changes resolve after darkness at night is restored. If they persist, early exposure could leave lasting imprints on brain aging. Addressing this question is essential for guiding strategies to mitigate the impact of light pollution.

neuroscience↗

Traumatic brain injury exacerbates mitochondrial dysfunction in APP/PS1 knock-in mice through time-dependent pathways

Cerebral hypometabolism occurs in both traumatic brain injury (TBI) and Alzheimers disease (AD), but whether these conditions act through distinct or overlapping mechanisms is unclear. TBI disrupts cerebral metabolism via blood-brain barrier damage, altered glucose transporter expression, calcium buffering abnormalities, and oxidative damage to metabolic enzymes. AD-related hypometabolism is linked to amyloid-{beta} (A{beta}) effects on mitochondria, including impaired respiration, oxidative stress, and altered mitophagy, fusion, and fission. We tested whether TBI-induced mitochondrial dysfunction exacerbates A{beta}-mediated impairment using a closed-head injury (CHI) model in APP/PS1 knock-in (KI) mice. Injuries were delivered at 4-5 months of age, before plaque formation and mitochondrial deficits in KI mice. Bioenergetics were measured at 1, 4, and 8 months post-injury in hippocampus and cortex using Seahorse assays on isolated mitochondria. At 1 month, genotype-by-injury interactions revealed greater dysfunction in KI mice than either condition alone, with males more vulnerable than females. At 4-8 months, amyloid-mediated effects predominated, while TBI-specific changes were no longer apparent, suggesting recovery or convergence onto shared mechanisms. These results indicate that TBI can temporarily worsen mitochondrial dysfunction in the context of early amyloidosis, with sex influencing vulnerability. Findings provide insight into the temporal relationship between TBI and amyloid-induced mitochondrial deficits and support the importance of sex as a biological variable in neurodegenerative disease progression. HighlightsTBI and APP/PS1 genotype interact to worsen early mitochondrial dysfunction. Hippocampus exhibits greater susceptibility to combined TBI and amyloid pathology. Sex-specific effects and temporal patterns underscore TBIs role in AD risk. Male mice show heightened vulnerability to TBI-induced mitochondrial dysfunction. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=71 SRC="FIGDIR/small/679790v1_ufig1.gif" ALT="Figure 1"> View larger version (27K): org.highwire.dtl.DTLVardef@198e17org.highwire.dtl.DTLVardef@1bfa6d4org.highwire.dtl.DTLVardef@161c1d0org.highwire.dtl.DTLVardef@fb4dc1_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗