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Reid, K. M.

Publications and source records attributed to Reid, K. M..

2 recordsLinked to original sources

Monomer binding modes of small molecules that modulate the kinetics of hIAPP amyloid formation

Human islet amyloid polypeptide (hIAPP) forms amyloid fibrils that accumulate in pancreatic {beta}-cells of Type II Diabetes (T2D) patients. Recently discovered small molecules that modulate the kinetics of hIAPP amyloid formation could serve as starting points for developing T2D therapeutics, but no structural or mechanistic rationale exists to explain their binding mechanisms or effects on hIAPP aggregation pathways. Here, we utilize all-atom molecular dynamics computer simulations to elucidate the binding mechanisms of an hIAPP aggregation inhibitor (YX-I-1) and an aggregation accelerator (YX-A-1) to disordered monomers of wild-type hIAPP and the naturally occurring pathogenic S20G hIAPP variant associated with early-onset T2D. We observe that the inhibitor exhibits substantially higher affinity for monomeric wild-type hIAPP than the accelerator, consistent with previously reported biophysical experiments. We dissect the interactions that stabilize binding of each molecule to wild-type and S20G hIAPP and characterize conformational changes that occur upon ligand binding. In all ligand-bound ensembles, distinct fragments of YX-I-1 and YX-A-1 are sequestered from solvent upon binding while other fragments remain solvent-exposed. Based on our simulations we hypothesize that buried ligand moieties confer hIAPP monomer binding affinity while solvent-exposed ligand moieties modulate the kinetics of intermolecular association of bound hIAPP into higher-order oligomeric intermediates on amyloid aggregation pathways.

biophysics↗

Genomic drivers of large B-cell lymphoma resistance to CD19 CAR-T therapy

Chimeric antigen receptor-reprogrammed autologous T cells directed to CD19 are breakthrough immunotherapies for heavily pretreated patients with aggressive B-cell lymphomas but still fail to cure most patients. Host inflammatory and tumor microenvironmental factors associate with CAR-19 resistance, but the tumor-intrinsic factors underlying these phenomena remain undefined. To characterize genomic drivers of resistance, we interrogated whole genome sequencing of 30 tumor samples from 28 uniformly CAR-19-treated large-cell lymphoma patients. We reveal that patterns of genomic complexity (i.e., chromothripsis and APOBEC mutational activity), and distinct genomic alterations (deletions of RB1 or RHOA) associate with more exhausted immune microenvironments and poor outcome after CAR-19 therapy. Strikingly, pretreatment reduced expression or sub-clonal mutation of CD19 did not affect responses, suggesting CAR-19 therapy successes are due not only to direct antigen-dependent cytotoxicity but require surmounting immune exhaustion in tumor microenvironments to permit broader host responses that eliminate tumors.

cancer biology↗