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Abdelsalam, M.

Publications and source records attributed to Abdelsalam, M..

2 recordsLinked to original sources

Real-World Progression-Free Survival with Erlotinib versus Osimertinib in EGFR L858R+T790M Compound Mutation Non-Small Cell Lung Cancer: An Exploratory Analysis of the MSK-CHORD Dataset

BackgroundOsimertinib is the standard first-line treatment for EGFR-mutant non-small cell lung cancer (NSCLC) harboring common activating mutations, including exon 19 deletions and L858R. It is also active against tumors with acquired T790M resistance. However, the EGFR L858R+T790M compound mutation -- where both variants co-occur within the same tumor -- may confer distinct drug-sensitivity profiles not predicted by either mutation alone. Limited data exist on comparative treatment outcomes in this rare genotype. MethodsUsing the MSK-CHORD clinicogenomic dataset (n=24,950), we identified patients with concurrent EGFR L858R and T790M mutations receiving erlotinib (Erlo) or osimertinib (Osi) monotherapy. Real-world progression-free survival (rwPFS) per treatment line was calculated using a strict definition requiring confirmed radiological progression events (rwPFS-strict), excluding lines with null endpoint data. Kaplan-Meier analysis, log-rank testing, Cox proportional hazards regression, and cross-cohort heterogeneity testing (Cochrans Q statistic) were performed. Two control cohorts -- L858R-only (n=372) and T790M-only (n=76) -- were analyzed in parallel to assess mutation-context specificity of treatment response. ResultsThirty-one patients with EGFR L858R+T790M were identified; 21 contributed evaluable monotherapy lines, yielding 23 Erlo and 15 Osi treatment lines (14 unique patients per treatment group, 7 contributing to both). Median rwPFS numerically favored Erlo over Osi (7.10 vs 5.32 months; HR 1.29, 95% CI 0.66-2.52; log-rank p=0.46). This directional trend was reversed in the L858R-only control cohort, where Osi demonstrated significant superiority (9.03 vs 5.75 months; HR 0.70, 95% CI 0.55-0.89; p=0.003). The T790M-only cohort showed no significant difference (HR 1.32, p=0.12). An exploratory post-hoc heterogeneity test confirmed a significant cross-cohort interaction (Q=9.94, df=2, p=0.007). ConclusionsThe expected osimertinib advantage was absent in L858R+T790M compound-mutant NSCLC. The opposing hazard ratio directions across mutation contexts (HR 1.29 vs 0.70), with a significant exploratory cross-cohort interaction (p=0.007), suggest that the EGFR L858R+T790M compound mutation may represent a pharmacologically distinct entity with differential TKI sensitivity. These hypothesis-generating findings warrant prospective validation. HIGHLIGHTSO_LIL858R+T790M compound mutation may represent a distinct pharmacological TKI context. C_LIO_LIErlotinib showed a point-estimate PFS advantage over osimertinib (HR 1.29, p=0.46). C_LIO_LIOsimertinib was significantly superior in L858R-only disease (HR 0.70, p=0.003). C_LIO_LICross-cohort HR reversal in T790M-containing cohorts; interaction p=0.007. C_LIO_LIProspective validation with larger cohorts and allelic phasing data is warranted. C_LI TWEETABLE ABSTRACT#EGFR L858R+T790M compound mutation: erlotinib trend over osimertinib (HR 1.29 vs 0.70 in L858R-only), interaction p=0.007. #LungCancer

bioinformatics↗

Rapid proteasomal degradation of mutant feline McDonough sarcoma-like tyrosine kinase-3 overcomes tyrosine kinase inhibitor resistance of acute myeloid leukemia cells

BackgroundFeline McDonough sarcoma (FMS)-related receptor tyrosine kinase 3 with activating internal tandem duplications (FLT3-ITD) causes acute myeloid leukemia (AML). Targeted protein degraders for FLT3 have evolved as drugs against leukemia. MethodsWe synthesized and characterized MA191 as novel von Hippel-Lindau (VHL)-based proteolysis targeting chimera (PROTAC) for FLT3. We analyzed protein expression, protein degradation mechanisms, and posttranslational modifications by immunoblot. Selective proteasome modulation, an inactive stereoisomer of MA191, and siRNA confirmed the event-driven degradation of FLT3-ITD. Hematopoietic cell survival and differentiation were determined by flow cytometry using apoptosis and cell surface markers. As models, we used cultured and primary human AML cells, FLT3 inhibitor-resistant AML cells, mature blood cells, and hematopoietic stem cells. We scrutinized the databases DepMap, GEPIA2, Hemap, and HPA to assess FLT3 expression and patient survival. Experiments with Danio rerio larvae verified in vivo anti-leukemic activity of MA191. ANOVA and Bonferroni correction were used for statistics. ResultsMA191 is a rapid nanomolar apoptosis inducer in AML cells harboring FLT3-ITD (IC50=10.16-11.6 nM; EC50=0.015-0.883 {micro}M). A stereoisomer of MA191 that cannot recruit VHL demonstrates that elimination of FLT3-ITD is superior to its inhibition. MA191 abrogates FLT3 inhibitor resistance from rebound activation of mitogen-activated kinases. Rapid depletion of FLT3-ITD by MA191 (DC50=10 nM) requires VHL, neddylation, and the pro-apoptotic BH3-only protein BIM. Reduction of FLT3-ITD by MA191 precedes apoptosis. This reveals an apoptosis-independent function of BIM on protein stability. Leukemia cells express more FLT3 than healthy cells (n=3675/n=1249) and FLT3 expression is associated with worse AML patient survival (p=0.0099). MA191 does not harm blood cells and bone marrow progenitor cells and does not disturb myeloid blood cell differentiation. In Danio rerio, MA191 halts AML cell proliferation without significant toxicity. Anti-leukemic effects of MA191 are not susceptible to anti-apoptotic effects of human stromal cells and mutations in the tyrosine kinase of FLT3-ITD that confer resistance to selective FLT3 inhibitors. Conclusionsthese insights and the disclosure of the structure of MA191 provide a framework for an improved design of PROTACs that target mutant FLT3 and are not vulnerable to extrinsic and intrinsic resistance mechanisms. Degradation kinetics appear as determinant of such resistance breakers. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=188 SRC="FIGDIR/small/660791v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@17e5988org.highwire.dtl.DTLVardef@27fbc4org.highwire.dtl.DTLVardef@1023648org.highwire.dtl.DTLVardef@39bdcb_HPS_FORMAT_FIGEXP M_FIG C_FIG

pharmacology and toxicology↗