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Bingol, B.

Publications and source records attributed to Bingol, B..

3 recordsLinked to original sources

Phosphorylated ubiquitin is a secondary messenger and an epigenetic mark mediating mitochondria to nucleus signaling

AbstractParkinsons disease (PD) is commonly associated with dysfunctional mitochondrial homeostasis. PINK1, a S/T kinase mutated in early-onset PD, generates phosphoserine 65 ubiquitin (pS65Ub) on damaged mitochondria facilitating their removal. Here, we show that pS65Ub translocates into the nucleus after generation at damaged mitochondria and is directly attached to substrates by resident E3 ligases. Histone H2A is a major substrate and is modified at lysine 119 (H2AK119) by the polycomb silencer, E3 ligase RING1B. At nucleosomes, pS65Ub simultaneously suppresses RING1B and potentiates H2A deubiquitinases USP16 and USP21. Epigenetic profiling and RNA sequencing reveal that pS65Ub is enriched at the promoters of poorly expressed yet dynamically regulated genes and is associated with H2AK119ub depletion. Functionally, we show that pS65Ub enrichment drives polycomb target gene expression, which accelerates the maturation of dopaminergic neurons. Importantly, post-mortem PD brains exhibit elevated nuclear pS65Ub, potentially linking nuclear pS65Ub accumulation with disease pathogenesis. Together, these data indicate that pS65Ub generated at damaged mitochondria regulates fundamental cellular processes at distant sites.

cell biology↗

Intranigral injection of Alpha-Synuclein pre-formed fibrils leads to BBB compromise and Bilateral Dopaminergic Neurodegeneration in A53T Alpha-Synuclein transgenic mice.

Parkinsons disease (PD) is a progressive neurodegenerative disorder characterized by alpha-()-Synuclein neuronal aggregation and loss of dopaminergic (DA) neurons. Developing animal models that replicate PDs neuropathological phenotypes is critical for understanding its pathophysiology and evaluating potential therapeutic targets. In this study, we show that direct unilateral injection of human -Synuclein PFFs into the Substantia Nigra (SN) of mutant A53T -synuclein overexpressing mice induce bilateral phosphorylated -Synuclein (pS129) pathology in the SN. This pathology spreads to the striatum, cerebral cortex, and midbrain within 60 days and is accompanied by neuroinflammation in the midbrain and cerebral cortex. Additionally, we observed synuclein-dependent neurodegeneration, with a 50% reduction in Tyrosine Hydroxylase (TH) intensity in the SN and a 40% reduction in Striatum, both bilaterally. The model also revealed a compromised blood-brain barrier (BBB) and T-cell infiltration in the PFF injected animals, correlating with pS129 pathology and neuroinflammation. Taken together, we developed a mouse model that recapitulates multiple PD phenotypes, providing a valuable platform for testing therapeutic strategies targeting human -Synuclein pathology and for exploring CNS-peripheral immune interactions in PD. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=135 SRC="FIGDIR/small/690780v2_ufig1.gif" ALT="Figure 1"> View larger version (20K): org.highwire.dtl.DTLVardef@19c6234org.highwire.dtl.DTLVardef@1f36bbaorg.highwire.dtl.DTLVardef@25ac6borg.highwire.dtl.DTLVardef@15ad61d_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Protein degradation by small tag artificial bacterial E3 ligase

Targeting of proteins for degradation in a reversible manner is a powerful approach to decipher gene function and mimic drug effects, with great potential for drug target discovery and validation. A generalized approach is to tag a protein of interest and then use this tag to recruit an endogenously or exogenously expressed E3 ligase for its polyubiquitination and subsequent degradation via 26S proteasome. However, the often bulky size of the tag and the great variability of substrate-dependent degradation efficiency of mammalian E3 ligases pose great challenges in practice. Here we show that small tags (10-15 amino acids) can be used to efficiently tag endogenous proteins for degradation when coupled with an exogenously expressed artificial bacterial E3 ligase (ABEL) consisting of a tag-interacting moiety and the catalytic domain of the bacterial E3 ligase IpaH9.8. We name this versatile and efficient platform degradation by small tag ABEL (DESTABEL). Furthermore, we show that an ABEL containing a nanobody against human -synuclein mediates efficient degradation in primary neurons as well as in the adult mouse brain. Taken together, our data show that tag-dependent and independent ABELs are powerful yet flexible tools for studies of protein function and drug target validation.

molecular biology↗