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Keppeke, G. D.

Publications and source records attributed to Keppeke, G. D..

2 recordsLinked to original sources

''UNTARGETING'' AUTOANTIBODIES USING GENOME EDITING, A PROOF-OF-CONCEPT STUDY

Autoantibodies are useful biomarkers of autoimmune diseases and some have direct pathogenic role. Current standard therapies for elimination of specific B/plasma-cell clones are not fully efficient. In this proof-of-concept study, we used the CRISPR/Cas9 genome-editing system to knockout V(D)J rearrangements that produce pathogenic autoantibodies in vitro. HEK293T cell lines were established with stable expression of two monoclonal antibodies, a humanized anti-dsDNA (clone 3H9) and a human-derived anti-nAChR-1-subunit (clone B12L). For each clone, five CRISPR/Cas9 guided-RNAs (T-gRNAs) were designed to target the heavy chain CDR2/3 variable regions. After CRISPR/Cas9 editing, levels of secreted immunoglobulins were evaluated, in addition to 3H9 anti-dsDNA reactivity by ELISA and B12L anti-AChR reactivity using cells overexpressing mouse genes of AChR-1/{beta}1/{delta}/{gamma}/{varepsilon}-subunits. The T-gRNAs decreased the expression of the heavy chain to [~]50-60%, compared to >90% in Non-Target-gRNA. Levels of secreted IgG and reactivity to the respective target antigens decreased [~]90% and [~]95% after knockout with the T-gRNAs compared to Non-Target-gRNA for clones 3H9 and B12L, respectively. Sequencing indicated the presence of indels at the Cas9 cut-site, which could lead to codon jam, the likely cause of the knockout. Additionally, remaining secreted 3H9 antibodies presented variable reactivity to dsDNA among the five T-gRNA, suggesting that the exact Cas9 cut-site and indels may further interfere with antibody-antigen interaction. CRISPR/Cas9 genome-editing was very effective to knockout the Heavy-Chain-IgG genes, considerably affecting the secretion and binding capacity of the autoantibodies in vitro, warranting application of this concept to in vivo models as a potential novel therapeutic approach for autoantibody-mediated diseases. Highlights[tpltrtarr] Autoantibodies can have a direct pathogenic role in some autoimmune diseases. [tpltrtarr]Elimination of specific B/plasma-cell clones is not attainable with current therapies. [tpltrtarr]CRISPR/Cas9 allows targeting of specific DNA sites, such as V(D)J rearrangements. [tpltrtarr]CRISPR/Cas9 genome-editing was very effective in knocking out the heavy chain of autoantibodies. [tpltrtarr]Indels introduced at Cas9 cut site interfered with autoantibody-antigen interaction.

immunology↗

Molecular Crowding Facilitates Bundling of IMPDH Polymers and Cytoophidium Formation

The cytoophidium is a unique type of membraneless compartment comprising of filamentous protein polymers. Inosine monophosphate dehydrogenase (IMPDH) catalyzes the rate-limiting step of de novo GTP biosynthesis and plays critical roles in active cell metabolism. However, the molecular regulation of cytoophidium formation is poorly understood. Here we show that human IMPDH2 polymers bundle up to form cytoophidium-like aggregates in vitro when macromolecular crowders are present. The self-association of IMPDH polymers is suggested to rely on electrostatic interactions. In cells, the increase of molecular crowding with hyperosmotic medium induces cytoophidia, while the decrease of that by the inhibition of RNA synthesis perturbs cytoophidium assembly. In addition to IMPDH, CTPS and PRPS cytoophidium could be also induced by hyperosmolality, suggesting a universal phenomenon of cytoophidium-forming proteins. Finally, our results indicate that the cytoophidium can prolong the half-life of IMPDH, which is proposed to be one of conserved functions of this subcellular compartment.

cell biology↗