PubMed Health⌕ Search

Biomedical subjects

Gregor Reither

Publications and source records attributed to Gregor Reither.

3 recordsLinked to original sources

PKCalpha: a versatile key for decoding the cellular calcium toolkit.

Conventional protein kinases C (cPKCs) play an essential role in signal transduction and are believed to integrate both global Ca(2+) transients and diacylglycerol signals. We provide evidence that PKCalpha is a ubiquitous readout sensor for the cellular Ca(2+) toolkit, including highly restricted elementary Ca(2+) release. Threshold stimulations of cells with Ca(2+)-mobilizing agonists resulted in PKCalpha translocation events with limited spatial spreads (<4 microm) comprising two groups of lifetimes; brief events (400-1,500 ms) exclusively mediated by Ca(2+)-C2 domain membrane interactions and long-lasting events (>4 s) resulting from longer DAG-C1a domain-mediated membrane interactions. Although upon uncaging NP-EGTA, which is a caged Ca(2+) compound, WT-PKCalpha displayed rapid membrane translocations within <250 ms, PKCalpha constructs with C2 domains mutated in their Ca(2+)-binding region lacked any Ca(2+)-dependent translocation. Flash photolysis of diazo-2, a photosensitive caged Ca(2+) buffer, revealed a biphasic membrane dissociation (slow and fast period) of WT-PKCalpha. The slow phase was absent in cells expressing PKCalpha-constructs containing mutated C1a-domains with largely reduced DAG binding. Thus, two groups of PKCalpha membrane interactions coexist; C2- and C1a-mediated interactions with different lifetimes but rapid interconversion. We conclude that PKCalpha can readout very fast and, spatially and temporally, very complex cellular Ca(2+) signals. Therefore, cPKCs are important transducers for the ubiquitous cellular Ca(2+) signaling toolkit.

Animals↗

Intronic CA-repeat and CA-rich elements: a new class of regulators of mammalian alternative splicing.

We have recently identified an intronic polymorphic CA-repeat region in the human endothelial nitric oxide synthase (eNOS) gene as an important determinant of the splicing efficiency, requiring specific binding of hnRNP L. Here, we analyzed the position requirements of this CA-repeat element, which revealed its potential role in alternative splicing. In addition, we defined the RNA binding specificity of hnRNP L by SELEX: not only regular CA repeats are recognized with high affinity but also certain CA-rich clusters. Therefore, we have systematically searched the human genome databases for CA-repeat and CA-rich elements associated with alternative 5' splice sites (5'ss), followed by minigene transfection assays. Surprisingly, in several specific human genes that we tested, intronic CA RNA elements could function either as splicing enhancers or silencers, depending on their proximity to the alternative 5'ss. HnRNP L was detected specifically bound to these diverse CA elements. These data demonstrated that intronic CA sequences constitute novel and widespread regulatory elements of alternative splicing.

Alternative Splicing↗

Novel functional role of CA repeats and hnRNP L in RNA stability.

CA dinucleotide repeat sequences are very common in the human genome. We have recently demonstrated that the polymorphic CA repeats in intron 13 of the human endothelial nitric oxide synthase (eNOS) gene function as an unusual, length-dependent splicing enhancer. The CA repeat enhancer requires for its activity specific binding of hnRNP L. Here we show that in the absence of bound hnRNP L, the pre-mRNA is cleaved directly upstream of the CA repeats. The addition of recombinant hnRNP L restores RNA stability. CA repeats are both necessary and sufficient for this specific cleavage in the 5' adjacent RNA sequence. We conclude that-in addition to its role as a splicing activator-hnRNP L can act in vitro as a sequence-specific RNA protection factor. Based on the wide abundance of CA repetitive sequences in the human genome, this may represent a novel, generally important role of this abundant hnRNP protein.

Base Sequence↗