bioRxiv Science⌕ Search

Biology subjects

Gan, K.

Publications and source records attributed to Gan, K..

2 recordsLinked to original sources

ACLY promotes NK cell effector function by regulating glycolysis and histone acetylation

Natural Killer (NK) cells are innate immune lymphocytes important for host viral and tumor immunity. We investigated the requirement for ATP citrate lyase (ACLY) in NK cell function using an inducible genetic mouse model. ACLY regulates the citrate-malate shuttle, generating cytosolic acetyl-coenzyme A that is primarily used for acetylation or lipid synthesis. ACLY-deficient NK cells upon IL-15 activation exhibited significant defects in glycolysis, proliferation, cytokine production, and cytotoxicity, without decreased intracellular lipids. Notably, ACLY-deficiency specifically resulted in reduced NK cell responses to activating receptors associated with the adapter proteins DAP10 or DAP12. This is due to decreased DAP12 and increased DAP10 transcript and protein, coupled with epigenetic profiling that demonstrated altered histone acetylation of these genes in ACLY KO. Supplementation of ACLY-deficient NK cells with acetate was sufficient to overcome most functional defects, including restoring DAP10/12 expression and activating receptor function, emphasizing the importance of ACLY-generated cytosolic acetyl-coenzyme A for NK effector functions.

immunology↗

Synthetic ratio computation for programming population composition and multicellular morphology

Recent advancements in genetic engineering have provided diverse tools for artificially synthesizing population diversity in both prokaryotic and eukaryotic systems. However, achieving precise control over the ratios of multiple cell types within a population derived from a single founder remains a significant challenge. In this study, we introduce a suite of recombinase-mediated genetic devices designed to achieve accurate population ratio control, enabling the distribution of distinct functionalities across multiple cell types. We systematically evaluated key parameters influencing recombination efficiency and developed data-driven models to reliably predict binary differentiation outcomes. Using these devices, we implemented parallel and series circuit topologies to create user-defined, complex cell fate branching programs. These branching devices facilitated the autonomous differentiation of precision fermentation consortia from a single founder strain, optimizing cell-type ratios for applications such as pigmentation and cellulose degradation. Beyond biomanufacturing, we engineered multicellular aggregates with genetically encoded morphologies by coordinating self-organization through cell adhesion molecules (CAMs). Our work provides a comprehensive characterization of recombinase-based cell fate branching mechanisms and introduces a novel approach for the bottom-up, high-resolution construction of synthetic consortia and multicellular assemblies.

synthetic biology↗