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Steyert, M.

Publications and source records attributed to Steyert, M..

2 recordsLinked to original sources

Cas9 fusions for precision in vivo editing

Cas9 targets genomic loci with high specificity. When used for knockin, however, Cas9 often leads to unintended on-target knockout rather than intended edits. This imprecision is a barrier for direct in vivo editing where clonal selection is not feasible. Here we demonstrate a high-throughput workflow to ratiometrically assess on-target efficiency and precision of editing outcomes. Using this workflow, we screened combinations of donor DNA and Cas9 variants, as well as fusions to DNA repair proteins. This yielded novel high-performance double-strand break repair editing agents and combinatorial optimizations with orders-of-magnitude increases in knockin precision. Cas9-RC, a novel Cas9 fusion to eRad18 and CtIP, increased knockin performance over 3-fold in vitro and in vivo in the developing mouse brain. Continued comparative assessment of existing and novel editing agents with this ratiometric framework of efficiency and precision will further the development of direct in vivo knockin and future genetic therapies.

synthetic biology↗

Dorsal horn CGRP-expressing interneurons contribute to nerve injury-induced mechanical hypersensitivity

Primary sensory neurons are generally considered the only source of dorsal horn calcitonin gene-related peptide (CGRP), a neuropeptide critical to the transmission of pain messages. Using a tamoxifen-inducible CGRPCreER transgenic mouse, here we identified a distinct population of CGRP-expressing excitatory interneurons in lamina III of the spinal cord dorsal horn and trigeminal nucleus caudalis. These interneurons have spine-laden, dorsally-directed, dendrites and ventrally-directed axons. Neither innocuous nor noxious stimulation provoked significant Fos expression in these neurons. However, synchronous, electrical non-nociceptive A{beta} primary afferent stimulation of dorsal roots depolarized the CGRP interneurons, consistent with their receipt of a VGLUT1 innervation. In contrast, chemogenetic activation produced a significant mechanical hypersensitivity. Importantly, the CGRP interneurons could be activated after peripheral nerve injury, but only with concurrent innocuous, brush stimulation. These findings suggest that hyperexcitability of dorsal horn CGRP interneurons is an important contributor to the circuits that render touch painful after peripheral nerve damage.

neuroscience↗