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Schwartz, E. A.

Publications and source records attributed to Schwartz, E. A..

3 recordsLinked to original sources

Assembly of multi-subunit fusion proteins into the RNA-targeting type III-D CRISPR-Cas effector complex

CRISPR (Clustered regularly interspaced short palindromic repeats)-Cas (CRISPR-associated) systems are a type of adaptive immune response in bacteria and archaea that utilize crRNA (CRISPR RNA)-guided effector complexes to target complementary RNA or DNA for destruction. The prototypical type III-A and III-B CRISPR-Cas systems utilize multi-subunit effector complexes composed of individual proteins to cleave ssRNA targets at 6-nt intervals, as well as non-specifically degrading ssDNA and activating cyclic oligoadenylate (cOA) synthesis. Recent studies have shown that type III systems can contain subunit fusions yet maintain canonical type III RNA-targeting capabilities. To understand how a multi-subunit fusion effector functions, we determine structures of a variant type III-D effector and biochemically characterize how it cleaves RNA targets. These findings provide insights into how multi-subunit fusion proteins are tethered together and assemble into an active and programmable RNA endonuclease, how the effector utilizes a novel mechanism for target RNA seeding, and the structural basis for the evolution of type III effector complexes. Furthermore, our results provide a blueprint for fusing subunits in class 1 effectors for design of user-defined effector complexes with disparate activities. Important noteWhile this manuscript was in preparation, a manuscript describing the structure of the type III-E effector was published1. We reference these important findings; however, a careful comparison of the structures will follow once the coordinates have been released by the PDB.

biochemistry↗

Design of the mammalian cone photoreceptor to Off bipolar cell synapse

Graded synapses in sensory systems reliably transmit small signals in the presence of continuous quantal noise. To understand how signaling is optimized during graded transmission, we counted the number of vesicles released by a mammalian cone terminal and compared it to the simultaneous responses in each Off bipolar cell type. Off bipolar cells contacting the terminal base comprised two groups depending on how they sampled transmitter release. In both groups, responses initially grew non-linearly with the number of released vesicles implicating a role for cooperativity during sparse release. One group sampled release from most of a cones [~]20 ribbons and can exploit averaging to improve signal reliability. The other, less-sensitive group made 1-3 contacts at the terminal center and responded to pooled transmitter, a consequence of membrane depolarization, using an insensitive kainate receptor. Off bipolar cells use different strategies to minimize transmission noise and encode cone output over different ranges.

neuroscience↗

Internal translation of large subunit transcripts drives small subunit synthesis in type I CRISPR-Cas interference complexes

CRISPR-Cas adaptive immune systems provide prokaryotes with defense against viruses by degradation of specific invading nucleic acids. We investigated the previously uncharacterized type I-D interference complex from Synechocystis and revealed it is a genetic and structural hybrid with similarity to both type I and III systems. Surprisingly, formation of the functional complex required internal in-frame translation of small subunits from within the large subunit gene. We further show that internal translation to generate small subunits is widespread across diverse type I-D, I-B and I-C systems, which account for roughly one quarter of CRISPR-Cas systems. Our work reveals the unexpected expansion of protein coding potential from within single cas genes, which has important implications for understanding CRISPR-Cas function and evolution. One Sentence SummaryInternal translation of large subunit transcripts drives small subunit synthesis in diverse type I CRISPR-Cas interference complexes

molecular biology↗