Person: Flaherty, Keith
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Publication BRAF inhibition is associated with increased clonality in tumor-infiltrating lymphocytes
(Landes Bioscience, 2013) Cooper, Zachary A; Frederick, Dennie T; Juneja, Vikram R.; Sullivan, Ryan J; Lawrence, Donald; Piris, Adriano; Sharpe, Arlene; Fisher, David; Flaherty, Keith; Wargo, Jennifer AThere have been significant advances with regard to BRAF-targeted therapies against metastatic melanoma. However, the majority of patients receiving BRAF inhibitors (BRAFi) manifest disease progression within a year. We have recently shown that melanoma patients treated with BRAFi exhibit an increase in melanoma-associated antigens and in CD8+ tumor-infiltrating lymphocytes in response to therapy. To characterize such a T-cell infiltrate, we analyzed the complementarity-determining region 3 (CDR3) of rearranged T-cell receptor (TCR) β chain-coding genes in tumor biopsies obtained before the initiation of BRAFi and 10–14 d later. We observed an increase in the clonality of tumor-infiltrating lymphocytes in 7 of 8 patients receiving BRAFi, with a statistically significant 21% aggregate increase in clonality. Over 80% of individual T-cell clones detected after initiation of BRAFi treatment were new clones. Interestingly, the comparison of tumor infiltrates with clinical responses revealed that patients who had a high proportion of pre-existing dominant clones after the administration of BRAFi responded better to therapy than patients who had a low proportion of such pre-existing dominant clones following BRAFi. These data suggest that although the inhibition of BRAF in melanoma patients results in tumor infiltration by new lymphocytes, the response to treatment appears to be related to the presence of a pre-existing population of tumor-infiltrating T-cell clones.
Publication PDGFRα up-regulation mediated by sonic hedgehog pathway activation leads to BRAF inhibitor resistance in melanoma cells with BRAF mutation
(Impact Journals LLC, 2014) Sabbatino, Francesco; Wang, YangYang; Wang, Xinhui; Flaherty, Keith; Yu, Ling; Pepin, David; Scognamiglio, Giosue'; Pepe, Stefano; Kirkwood, John M.; Cooper, Zachary A.; Frederick, Dennie T.; Wargo, Jennifer Ann; Ferrone, Soldano; Ferrone, CristinaControl of BRAF(V600E) metastatic melanoma by BRAF inhibitor (BRAF-I) is limited by intrinsic and acquired resistance. Growth factor receptor up-regulation is among the mechanisms underlying BRAF-I resistance of melanoma cells. Here we demonstrate for the first time that PDGFRα up-regulation causes BRAF-I resistance. PDGFRα inhibition by PDGFRα-specific short hairpin (sh)RNA and by PDGFRα inhibitors restores and increases melanoma cells' sensitivity to BRAF-I in vitro and in vivo. This effect reflects the inhibition of ERK and AKT activation which is associated with BRAF-I resistance of melanoma cells. PDGFRα up-regulation is mediated by Sonic Hedgehog Homolog (Shh) pathway activation which is induced by BRAF-I treatment. Similarly to PDGFRα inhibition, Shh inhibition by LDE225 restores and increases melanoma cells' sensitivity to BRAF-I. These effects are mediated by PDGFRα down-regulation and by ERK and AKT inhibition. The clinical relevance of these data is indicated by the association of PDGFRα up-regulation in melanoma matched biopsies of BRAF-I +/- MEK inhibitor treated patients with shorter time to disease progression and less tumor regression. These findings suggest that monitoring patients for early PDGFRα up-regulation will facilitate the identification of those who may benefit from the treatment with BRAF-I in combination with clinically approved PDGFRα or Shh inhibitors.
Publication Distinct clinical patterns and immune infiltrates are observed at time of progression on targeted therapy versus immune checkpoint blockade for melanoma
(Taylor & Francis, 2016) Cooper, Zachary A.; Reuben, Alexandre; Spencer, Christine N.; Prieto, Peter A.; Austin-Breneman, Jacob L.; Jiang, Hong; Haymaker, Cara; Gopalakrishnan, Vancheswaran; Tetzlaff, Michael T.; Frederick, Dennie T.; Sullivan, Ryan; Amaria, Rodabe N.; Patel, Sapna P.; Hwu, Patrick; Woodman, Scott E.; Glitza, Isabella C.; Diab, Adi; Vence, Luis M.; Rodriguez-Canales, Jaime; Parra, Edwin R.; Wistuba, Ignacio I.; Coussens, Lisa M.; Sharpe, Arlene; Flaherty, Keith; Gershenwald, Jeffrey E.; Chin, Lynda; Davies, Michael A.; Clise-Dwyer, Karen; Allison, James P.; Sharma, Padmanee; Wargo, Jennifer A.ABSTRACT We have made major advances in the treatment of melanoma through the use of targeted therapy and immune checkpoint blockade; however, clinicians are posed with therapeutic dilemmas regarding timing and sequence of therapy. There is a growing appreciation of the impact of antitumor immune responses to these therapies, and we performed studies to test the hypothesis that clinical patterns and immune infiltrates differ at progression on these treatments. We observed rapid clinical progression kinetics in patients on targeted therapy compared to immune checkpoint blockade. To gain insight into possible immune mechanisms behind these differences, we performed deep immune profiling in tumors of patients on therapy. We demonstrated low CD8+ T-cell infiltrate on targeted therapy and high CD8+ T-cell infiltrate on immune checkpoint blockade at clinical progression. These data have important implications, and suggest that antitumor immune responses should be assessed when considering therapeutic options for patients with melanoma.
Publication Co‐targeting BET and MEK as salvage therapy for MAPK and checkpoint inhibitor‐resistant melanoma
(John Wiley and Sons Inc., 2018) Echevarría‐Vargas, Ileabett M; Reyes‐Uribe, Patricia I; Guterres, Adam N; Yin, Xiangfan; Kossenkov, Andrew V; Liu, Qin; Zhang, Gao; Krepler, Clemens; Cheng, Chaoran; Wei, Zhi; Somasundaram, Rajasekharan; Karakousis, Giorgos; Xu, Wei; Morrissette, Jennifer JD; Lu, Yiling; Mills, Gordon B; Sullivan, Ryan; Benchun, Miao; Frederick, Dennie T; Boland, Genevieve; Flaherty, Keith; Weeraratna, Ashani T; Herlyn, Meenhard; Amaravadi, Ravi; Schuchter, Lynn M; Burd, Christin E; Aplin, Andrew E; Xu, Xiaowei; Villanueva, JessieAbstract Despite novel therapies for melanoma, drug resistance remains a significant hurdle to achieving optimal responses. NRAS‐mutant melanoma is an archetype of therapeutic challenges in the field, which we used to test drug combinations to avert drug resistance. We show that BET proteins are overexpressed in NRAS‐mutant melanoma and that high levels of the BET family member BRD4 are associated with poor patient survival. Combining BET and MEK inhibitors synergistically curbed the growth of NRAS‐mutant melanoma and prolonged the survival of mice bearing tumors refractory to MAPK inhibitors and immunotherapy. Transcriptomic and proteomic analysis revealed that combining BET and MEK inhibitors mitigates a MAPK and checkpoint inhibitor resistance transcriptional signature, downregulates the transcription factor TCF19, and induces apoptosis. Our studies demonstrate that co‐targeting MEK and BET can offset therapy resistance, offering a salvage strategy for melanomas with no other therapeutic options, and possibly other treatment‐resistant tumor types.
Publication Molecular signatures of circulating melanoma cells for monitoring early response to immune checkpoint therapy
(National Academy of Sciences, 2018) Hong, Xin; Sullivan, Ryan; Kalinich, Mark; Kwan, Tanya Todorova; Giobbie-Hurder, Anita; Pan, Shiwei; LiCausi, Joseph A.; Milner, John D.; Nieman, Linda T.; Wittner, Ben; Ho, Uyen; Chen, Tianqi; Kapur, Ravi; Lawrence, Donald; Flaherty, Keith; Sequist, Lecia; Ramaswamy, Sridhar; Miyamoto, David; Lawrence, Michael; Toner, Mehmet; Isselbacher, Kurt; Maheswaran, Shyamala; Haber, DanielA subset of patients with metastatic melanoma have sustained remissions following treatment with immune checkpoint inhibitors. However, analyses of pretreatment tumor biopsies for markers predictive of response, including PD-1 ligand (PD-L1) expression and mutational burden, are insufficiently precise to guide treatment selection, and clinical radiographic evidence of response on therapy may be delayed, leading to some patients receiving potentially ineffective but toxic therapy. Here, we developed a molecular signature of melanoma circulating tumor cells (CTCs) to quantify early tumor response using blood-based monitoring. A quantitative 19-gene digital RNA signature (CTC score) applied to microfluidically enriched CTCs robustly distinguishes melanoma cells, within a background of blood cells in reconstituted and in patient-derived (n = 42) blood specimens. In a prospective cohort of 49 patients treated with immune checkpoint inhibitors, a decrease in CTC score within 7 weeks of therapy correlates with marked improvement in progression-free survival [hazard ratio (HR), 0.17; P = 0.008] and overall survival (HR, 0.12; P = 0.04). Thus, digital quantitation of melanoma CTC-derived transcripts enables serial noninvasive monitoring of tumor burden, supporting the rational application of immune checkpoint inhibition therapies.