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Kleinhenz, A.

Publications and source records attributed to Kleinhenz, A..

3 recordsLinked to original sources

A lipid nanoparticle platform for high yield CRISPR-targeted homology directed repair enables fully non-viral CAR T cell generation

CRISPR-mediated homology directed repair (HDR) enables targeted CAR integration with improved fitness and therapeutic potential of CAR T cells. However, current methods for generating HDR-engineered CAR T cells rely on viral transduction or electroporation, approaches that limit global implementation and constrain patient access due to their cost, toxicity, and requirement for centralized manufacturing. Through a screen of ionizable lipids, we identified LNP systems that enable CRISPR-mediated gene knock-in (KI) in primary human T cells and are amenable to hand mixing by ethanol injection as a research tool or machine formulation for larger scale manufacturing. Modifying the linear dsDNA HDR template with truncated Cas9 target sequences (tCTS) enhanced HDR rates across multiple LNP systems. We optimized two LNP formulations capable of HDR-mediated KI of a large 4kB CD19 CAR-EGFR HDR template into the TRAC locus with rates of [≥]8% and >10x improved edited cell yields compared to electroporation. We demonstrate that LNP-generated CAR T cells exhibited similar growth kinetics, activation states, differentiation states, and killing capacity compared to electroporation-generated CAR T cells. Our LNP platform components are fully disclosed, commercially sourced, and enable efficient fully non-viral CRISPR-HDR cell engineering across diverse applications.

bioengineering↗

Microcystin-LR aerosol exposure increases inflammatory drivers of asthma, Evidence of an NF-κB amplification mechanism

Microcystin-LR (MC-LR) is one of a large family of cyanotoxins which are naturally produced by cyanobacteria within harmful algal blooms occurring in bodies of water globally. Early findings of the toxicity of such blooms stemmed from fatalities of livestock drinking from affected water. Since then, various toxins have been identified such as the microcystins. Microcystin-LR has been studied as a representative congener due to its abundance and toxicity. While there have been extensive studies of microcystin-LR by oral route exposure, we have turned our attention to inhalation route exposure due to the recent findings of microcystin-containing lake and sea-spray aerosol. We have shown inflammatory outcomes in the airways of mice and in human cell culture models after microcystin aerosol exposure, and have found a consistent molecular patterns similar to those of Type 1/Type 17 driven neutrophilic asthma. Here we address the hypothesis that MC-LR will increase the inflammatory mediators of neutrophilic asthma leading to worsening symptoms. This is tested and characterized in both in vitro and in vivo models. We found that asthma symptoms and molecular signatures of inflammation are both worsened by MC-LR exposure in a mouse model of neutrophilic asthma. We found that 3D human airway cell culture models reconstructed from asthmatic donor cells are similarly affected, however healthy donor cells are nearly unaltered by comparison. Aggregating these findings with RNA sequencing data from all models, we developed a hypothetical molecular mechanism which relies on MC-LR mediated amplification of existing inflammatory signaling. We test this in a human reporter cell line of NF-{kappa}B activity and further demonstrate the mechanism by inhibitor testing. This study sheds light on the risk to asthmatic patients living near or recreating on affected bodies of water. Beyond asthma, we believe this study provides crucial insight into the findings over the last 40 years concerning disparate outcomes of MC-LR exposure as the result of exposure will be dependent on the signaling state of the tissue upon exposure.

molecular biology↗

The ketone body β-Hydroxybutyrate mediated epigenetic chromatin β-hydroxybutyrylation protects kidneys

Starvation, intermittent fasting and exercise, all of which are recommended lifestyle modifiers share a common metabolic signature, ketogenesis to generate the ketone bodies, predominantly {beta}-hydroxybutyrate. {beta}-hydroxybutyrate exerts beneficial effects across various contexts, preventing or mitigating disease. We hypothesized that these dynamic health benefits of {beta}-hydroxybutyrate might stem from its ability to regulate genome architecture through chromatin remodeling via histone {beta}-hydroxybutyrylation, thereby influencing the transcriptome. Focusing on the kidney, which is an end organ protected by {beta}-hydroxybutyrate, we examined histone {beta}-hydroxybutyrylation-mediated chromatin remodeling. Notably, regions of the genome associated with lipid catabolism were predominantly in an open chromatin configuration, leading to active transcription and translation. Significant {beta}-hydroxybutyrylation was observed in the kidneys and the most highly upregulated gene actively transcribed and translated was 3-hydroxy-3-methyglutaryl CoA Synthase 2 (Hmgcs2), a gene responsible for the biosynthesis of {beta}-hydroxybutyrate in mitochondria. In contrast, regions with more compact chromatin structures were enriched with genes related to immune function such as protein tyrosine phosphatase receptor type C (Ptprc) and lymphocyte cytosolic protein 1 (Lcp1), which exhibited reduced transcription and translation. These results reveal that renal epigenetic histone {beta}-hydroxybutyrylation is a novel mechanism by which transcriptional regulation of both energy metabolism and immune function occur concomitantly to protect kidneys and lower hypertension. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=110 SRC="FIGDIR/small/628574v2_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@f16cdorg.highwire.dtl.DTLVardef@a22427org.highwire.dtl.DTLVardef@f3a6d3org.highwire.dtl.DTLVardef@4d705d_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical AbstractC_FLOATNO C_FIG

physiology↗