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Gonzalez, C. C.

Publications and source records attributed to Gonzalez, C. C..

3 recordsLinked to original sources

Selective knockout of PKA regulatory subunits reveal opposite catalytic and metabolic consequences with implications for Alzheimer's disease

cAMP-dependent Protein Kinase A (PKA) is a master regulator of cell signaling involved in energy metabolism, synaptic plasticity, and stress response. Dysregulated PKA signaling is implicated in diseases including neurodegeneration and cancer. PKA catalytic activity is regulated by two nonredundant regulatory subunits, Type I (RI/RI{beta}) and Type II (RII/RII{beta}), whose divergent functions are not fully understood. We generated double-knockout (KO) cell lines of RI/RI{beta} and RII/RII{beta} subunits and performed multiplexed MS-based proteomic and phosphoproteomic profiling under basal and glucose-perturbed conditions. We found that RI and RII loss drives distinct, and often opposite, remodeling of the cellular proteome and phosphoproteome. While both mutants blunted metabolic flexibility to glycolytic stressors and stimuli, RI and RII KO cells exhibited elevated and depressed glycolytic signaling, respectively. Interestingly, RI KO increased the abundance and kinase activity of the PKA catalytic subunit C isoform, leading to an increase in PKA substrate phosphorylation, whereas RII KO decreased the abundance, kinase activity, and substrate phosphorylation by the catalytic subunit C{beta} isoform. Notably, one of the most differentially affected PKA sites between RI and RII KOs maps to Tau, whose hyperphosphorylation is a hallmark of Alzheimers disease. Loss of RI increased Tau phosphorylation, which was not only caused by increased PKA catalytic activity, but also a higher binding affinity of Tau to RII subunits on the negatively-charged flexible linker region. Overall, the present study demonstrates that PKA RI and RII subunits play nonredundant roles in modulating PKA activity, metabolic flexibility, and phospho-regulation of key disease-associated substrates such as Tau.

biochemistry↗

La1: an evolutionarily conserved player in the Arabidopsis telomerase complex

Analysis of yeast and mammalian telomerase ribonucleoprotein (RNP) complexes reveals striking divergence in their biogenesis and protein complements. However, little is known about telomerase in plants. In addition to the catalytic subunit TERT and the templating RNA TR, we previously reported Arabidopsis thaliana contains two telomerase accessory factors, AtNAP57, a dyskerin homolog that in mammals is essential for telomerase activity, and the telomeric DNA binding protein AtPOT1a. Both proteins stimulate Arabidopsis telomerase repeat addition processivity. Here we employ quantitative mass spectrometry (MS) to further examine telomerase in Arabidopsis. Unexpectedly, dyskerin and AtPOT1a were not detected in our purified complexes, but AtLa1, an RNA-binding factor that recognizes the UUU-3'OH of RNA Pol III transcripts, was highly enriched. RNA-IP assays confirmed AtLa1 association with AtTR in vivo. RNAi-mediated knockdown of AtLa1 strongly diminished telomerase activity, indicating AtLa1 is required for its function in vivo. In vitro binding studies revealed that AtLa1 contacts AtTR via the UUU-3'OH and a plant-specific P1a-P1b-P4 three-way junction (TWJ). Since the TWJ is also required for AtNAP57 binding, the data suggesting that AtNAP57 and AtLa1 compete for AtTR binding or sequentially associate during RNP during biogenesis. In contrast to AtNAP57, AtLa1 did not stimulate telomerase activity when TERT and TR were assembled in vitro, consistent with function during a different step in telomerase assembly. We conclude Arabidopsis telomerase employs multiple accessory factors utilized by both mammalian and single-celled relatives. Further exploration of Arabidopsis telomerase may offer novel insight into telomerase evolution and mechanisms of biogenesis. Significance of ResearchQuantitative mass spectrometry of Arabidopsis telomerase uncovered AtLa1, a homolog of ciliate and yeast proteins that promotes telomerase maturation. AtLa1 is essential for telomerase function in vivo, and in vitro it engages the same region of AtTR bound by AtNAP57, homologous to a telomerase accessory from mammals.

plant biology↗

Intervertebral disc impairments in a mouse model of Alzheimer's Disease

Chronic low back pain, frequently associated with intervertebral disc (IVD) degeneration, is highly prevalent in individuals with Alzheimers disease (AD), and the pain intensity is highly correlated with the degree of cognitive impairment. While the incidences of both afflictions increase dramatically in the elderly population, it is unknown whether AD exacerbates the health of the IVD. Utilizing one-year-old male and female 5xFAD mice that constitutively express human APP and PSEN1 transgenes with five AD-linked mutations, we measured the lumbar IVDs extracellular matrix composition, the three-dimensional structure, histopathological degeneration, and mechanical behavior. The collagen, glycosaminoglycans, and advanced glycation end-products content of the IVD were not appreciably different between the 5xFAD animals and their wild-type littermates. Likewise, the 5xFAD IVDs were not histopathologically degenerated. However, the IVD volume, measured by contrast-enhanced microCT, was larger in the 5xFAD animals. Furthermore, dynamic microcompression revealed that 5xFAD IVDs exhibited higher loss tangent, indicating altered tissue damping and fluid-flow dynamics within the disc. These results suggest that although the IVDs of mice with AD are not more degenerated, they may be more susceptible to damage accumulation due to the elevated absorption of energy. Elderly individuals with AD may thus be more prone to IVD injuries that lead to eventual degeneration and spinal pain. Future work will focus on defining the molecular mechanisms and the consequences of these mechanical and structural changes in the IVD and their consequences to low back pain in individuals with AD.

bioengineering↗