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Patel, J. C.

Publications and source records attributed to Patel, J. C..

4 recordsLinked to original sources

Evaluating the Effects of Aircraft Noise on Hearing and Physiological Indicators: A Study of Military Personnel Using iTRAQ Proteomics and Cognitive Assessments

BackgroundNoise pollution poses a significant public health risk, with prolonged exposure to high levels of noise linked to various adverse outcomes such as annoyance, sleep disturbances, cognitive impairment, hypertension, and cardiovascular diseases. Noise-induced hearing loss (NIHL) is a prominent concern in noisy occupational settings. MethodThis study investigated NIHL among 621 male Air Force soldiers aged 18-45, exposed to intense aircraft noise. Auditory assessments included pure-tone audiometry (125 Hz to 8 kHz) to categorize hearing into normal, mild, moderate, and severe impairment. Distortion product otoacoustic emissions (DPOAE) and auditory brainstem response (ABR) were used to evaluate cochlear and auditory nerve function. Heart rate variability (HRV) provided insights into autonomic responses. Cognitive functions were assessed through computerized tests, and blood plasma was analyzed for cardiac biomarkers, oxidative stress indicators, inflammatory markers, and neurotransmitters. Proteomic analysis used iTRAQ labeling, MudPIT, and MALDI-TOF/TOF mass spectrometry for protein quantification and identification, with validation through ELISA. ResultsThe audiometric tests revealed varying degrees of hearing impairment, with significant threshold differences at 2000, 3000, 4000, and 6000 Hz, especially pronounced at 6000 Hz. The right ear showed greater impairment, and a characteristic high-frequency notch was observed, consistent with noise exposure. Proteomic analysis indicated that NIHL is associated with oxidative stress and systemic inflammation, with differential protein expression related to hearing, coagulation, and inflammation. ConclusionThis study highlights the severe impact of aircraft noise on hearing and systemic health, demonstrating correlations between hearing impairment and biochemical markers. It emphasizes the role of oxidative stress and inflammation in NIHL development and underscores the need for effective noise management and protective measures in noisy work environments.

molecular biology↗

Comparative specialization of intrinsic cardiac neurons in humans, mice, and pigs

Intrinsic cardiac neurons (ICNs) play a crucial role in the proper functioning of the heart; yet a paucity of data pertaining to human ICNs exists. We took a multidisciplinary approach to complete a detailed cellular comparison of the structure and function of ICNs from mice, pigs, and humans. Immunohistochemistry of whole and sectioned ganglia, transmission electron microscopy, intracellular microelectrode recording and dye filling for quantitative morphometry were used to define the neurophysiology, histochemistry, and ultrastructure of these cells across species. The densely packed, smaller ICNs of mouse lacked dendrites, formed axosomatic connections, and had high synaptic efficacy constituting an obligatory synapse. At Pig ICNs, a convergence of subthreshold cholinergic inputs onto extensive dendritic arbors supported greater summation and integration of synaptic input. Human ICNs were tonically firing, with synaptic stimulation evoking large suprathreshold excitatory postsynaptic potentials like mouse, and subthreshold potentials like pig. Ultrastructural examination of synaptic terminals revealed conserved architecture, yet small clear vesicles (SCVs) were larger in pigs and humans. The presence and localization of ganglionic neuropeptides was distinct, with abundant VIP observed in human but not pig or mouse ganglia, and little SP or CGRP in pig ganglia. Action potential waveforms were similar, but human ICNs had larger after-hyperpolarizations. Intrinsic excitability differed; 93% of human cells were tonic, all pig neurons were phasic, and both phasic and tonic phenotypes were observed in mouse. In combination, this publicly accessible, multimodal atlas of ICNs from mice, pigs, and humans identifies similarities and differences in the evolution of ICNs.

neuroscience↗

Dopamine neuron dysfunction and loss in the PrknR275W mouse model of Juvenile Parkinsonism

Mutations in the PRKN gene encoding the protein PARKIN cause Autosomal Recessive Juvenile Parkinsonism (ARJP). Harnessing this mutation to create an early-onset Parkinsons disease (PD) mouse model would provide a unique opportunity to clarify the mechanisms involved in the neurodegenerative process and lay the groundwork for the development of neuroprotective strategies. We created a knock-in mouse carrying the homozygous PrknR275W mutation, which is the missense mutation with the highest allelic frequency in PRKN patients. In PrknR275W mice, we analysed the anatomical and functional integrity of the nigrostriatal pathway, including striatal DA content and evoked striatal dopamine (DA) release, as well as the motor phenotype. We report here that PrknR275W mice show early DA neuron dysfunction, age-dependent loss of DA neurons in the substantia nigra, decreased DA content and stimulus-evoked DA release in the striatum, and progressive motor impairment. Together, these data show that the PrknR275W mouse recapitulates key features of ARJP. Thus, these studies fill a critical need in the field by introducing a promising new PD model in which to study causative mechanisms of the disease, as well as test therapeutic strategies.

neuroscience↗

Genetic reduction of PERK-eIF2α signaling in dopaminergic neurons drives cognitive and age-dependent motor dysfunction

An array of phenotypes in animal models of neurodegenerative disease have been shown to be reversed by neuronal inhibition of PERK, an eIF2 kinase that modulates the unfolded protein response (UPR). This suggests that targeting PERK therapeutically could be beneficial for treatment of human disease. Herein, using multiple genetic approaches we show that selective deletion of the PERK in mouse midbrain dopaminergic (DA) neurons results in multiple cognitive and age-dependent motor phenotypes. Conditional expression of phospho-mutant eIF2 in DA neurons recapitulated the phenotypes caused by deletion of PERK, consistent with a causal role of decreased eIF2 phosphorylation. In addition, deletion of PERK in DA neurons resulted in altered de novo translation, as well as age-dependent changes in axonal DA release and uptake in the striatum that mirror the pattern of motor changes observed. Taken together, our findings show that proper regulation of PERK-eIF2 signaling in DA neurons is required for normal cognitive and motor function across lifespan, and also highlight the need for caution in the proposed use of sustained PERK inhibition in neurons as a therapeutic strategy in the treatment of neurodegenerative disorders.

neuroscience↗