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1.
Blood Adv ; 6(2): 611-623, 2022 01 25.
Article in English | MEDLINE | ID: mdl-34644371

ABSTRACT

Targeted inhibitors of JAK2 (eg ruxolitinib) often provide symptomatic relief for myeloproliferative neoplasm (MPN) patients, but the malignant clone persists and remains susceptible to disease transformation. These observations suggest that targeting alternative dysregulated signaling pathways may provide therapeutic benefit. Previous studies identified NFκB pathway hyperactivation in myelofibrosis (MF) and secondary acute myeloid leukemia (sAML) that was insensitive to JAK2 inhibition. Here, we provide evidence that NFκB pathway inhibition via pevonedistat targets malignant cells in MPN patient samples as well as in MPN and patient-derived xenograft mouse models that are nonredundant with ruxolitinib. Colony forming assays revealed preferential inhibition of MF colony growth compared with normal colony formation. In mass cytometry studies, pevonedistat blunted canonical TNFα responses in MF and sAML patient CD34+ cells. Pevonedistat also inhibited hyperproduction of inflammatory cytokines more effectively than ruxolitinib. Upon pevonedistat treatment alone or in combination with ruxolitinib, MPN mouse models exhibited reduced disease burden and improved survival. These studies demonstrating efficacy of pevonedistat in MPN cells in vitro as well as in vivo provide a rationale for therapeutic inhibition of NFκB signaling for MF treatment. Based on these findings, a Phase 1 clinical trial combining pevonedistat with ruxolitinib has been initiated.


Subject(s)
Leukemia, Myeloid, Acute , Myeloproliferative Disorders , Primary Myelofibrosis , Animals , Cyclopentanes/therapeutic use , Humans , Leukemia, Myeloid, Acute/pathology , Mice , Myeloproliferative Disorders/drug therapy , Myeloproliferative Disorders/pathology , Primary Myelofibrosis/pathology , Pyrimidines
2.
Biosci Rep ; 40(12)2020 12 23.
Article in English | MEDLINE | ID: mdl-33325526

ABSTRACT

Aldehyde dehydrogenases (ALDHs) catalyze the conversion of various aliphatic and aromatic aldehydes into corresponding carboxylic acids. Traditionally considered as housekeeping enzymes, new biochemical roles are being identified for members of ALDH family. Recent work showed that AldA from the plant pathogen Pseudomonas syringae strain PtoDC3000 (PtoDC3000) functions as an indole-3-acetaldehyde dehydrogenase for the synthesis of indole-3-acetic acid (IAA). IAA produced by AldA allows the pathogen to suppress salicylic acid-mediated defenses in the model plant Arabidopsis thaliana. Here we present a biochemical and structural analysis of the AldA indole-3-acetaldehyde dehydrogenase from PtoDC3000. Site-directed mutants targeting the catalytic residues Cys302 and Glu267 resulted in a loss of enzymatic activity. The X-ray crystal structure of the catalytically inactive AldA C302A mutant in complex with IAA and NAD+ showed the cofactor adopting a conformation that differs from the previously reported structure of AldA. These structures suggest that NAD+ undergoes a conformational change during the AldA reaction mechanism similar to that reported for human ALDH. Site-directed mutagenesis of the IAA binding site indicates that changes in the active site surface reduces AldA activity; however, substitution of Phe169 with a tryptophan altered the substrate selectivity of the mutant to prefer octanal. The present study highlights the inherent biochemical versatility of members of the ALDH enzyme superfamily in P. syringae.


Subject(s)
Aldehyde Oxidoreductases/metabolism , Bacterial Proteins/metabolism , Indoles/metabolism , Pseudomonas syringae/enzymology , Aldehyde Oxidoreductases/chemistry , Aldehyde Oxidoreductases/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Kinetics , Models, Molecular , Mutagenesis, Site-Directed , Mutation , Protein Conformation , Pseudomonas syringae/genetics , Structure-Activity Relationship , Substrate Specificity
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