scholarly journals Novel Concepts of Treatment for Patients with Myelofibrosis and Related Neoplasms

Cancers ◽  
2020 ◽  
Vol 12 (10) ◽  
pp. 2891
Author(s):  
Prithviraj Bose ◽  
Lucia Masarova ◽  
Srdan Verstovsek

Janus kinase (JAK) inhibition forms the cornerstone of the treatment of myelofibrosis (MF), and the JAK inhibitor ruxolitinib is often used as a second-line agent in patients with polycythemia vera (PV) who fail hydroxyurea (HU). In addition, ruxolitinib continues to be studied in patients with essential thrombocythemia (ET). The benefits of JAK inhibition in terms of splenomegaly and symptoms in patients with MF are undeniable, and ruxolitinib prolongs the survival of persons with higher risk MF. Despite this, however, “disease-modifying” effects of JAK inhibitors in MF, i.e., bone marrow fibrosis and mutant allele burden reduction, are limited. Similarly, in HU-resistant/intolerant PV, while ruxolitinib provides excellent control of the hematocrit, symptoms and splenomegaly, reduction in the rate of thromboembolic events has not been convincingly demonstrated. Furthermore, JAK inhibitors do not prevent disease evolution to MF or acute myeloid leukemia (AML). Frontline cytoreductive therapy for PV generally comprises HU and interferons, which have their own limitations. Numerous novel agents, representing diverse mechanisms of action, are in development for the treatment of these three classic myeloproliferative neoplasms (MPNs). JAK inhibitor-based combinations, all of which are currently under study for MF, have been covered elsewhere in this issue. In this article, we focus on agents that have been studied as monotherapy in patients with MF, generally after JAK inhibitor resistance/intolerance, as well as several novel compounds in development for PV/ET.

Hematology ◽  
2015 ◽  
Vol 2015 (1) ◽  
pp. 649-651
Author(s):  
Naveen Pemmaraju ◽  
Ruben Mesa

A 69-year-old man presents with a Dynamic International Prognostic Scoring System (DIPSS) intermediate-risk 2 post polycythemia vera myelofibrosis with significant splenomegaly, 30 pound weight loss, constitutional symptoms, and 2% peripheral blood blasts. He has no other significant past medical history and no other major comorbid conditions. You are asked by the hematology fellow you are supervising whether or not treating this patient with a Janus kinase (JAK) inhibitor will decrease major morbid events.


Hematology ◽  
2015 ◽  
Vol 2015 (1) ◽  
pp. 649-651
Author(s):  
Naveen Pemmaraju ◽  
Ruben Mesa

Abstract A 69-year-old man presents with a Dynamic International Prognostic Scoring System (DIPSS) intermediate-risk 2 post polycythemia vera myelofibrosis with significant splenomegaly, 30 pound weight loss, constitutional symptoms, and 2% peripheral blood blasts. He has no other significant past medical history and no other major comorbid conditions. You are asked by the hematology fellow you are supervising whether or not treating this patient with a Janus kinase (JAK) inhibitor will decrease major morbid events.


Author(s):  
Sophia S. Lee ◽  
Srdan Verstovsek ◽  
Naveen Pemmaraju

ABSTRACT Myeloproliferative neoplasms (MPNs) are clonal hematopoietic disorders that consist classically of polycythemia vera (PV), essential thrombocythemia (ET), and myelofibrosis (MF). Janus kinase (JAK) inhibitors have become the standard of therapy in treating patients with intermediate- to higher-risk MF. However, JAK inhibitor (JAKi) treatment can be associated with development of resistance, suboptimal response, relapse, or treatment-related adverse effects. With no approved therapies beyond the JAKi class, the estimated median survival, post JAKi failure, is approximately two years or less; therefore, novel therapies are urgently needed in the MF field. In this review, we discuss ruxolitinib use in MPNs as well as causes of ruxolitinib failure or discontinuation. In addition, we review novel therapies being investigated alone or in combination with JAKi administration. We summarize concepts and mechanisms behind emerging novel therapies being studied for MPNs. This review of emerging novel therapies outlines several novel mechanisms of agents, including via promotion of apoptosis, alteration of the microenvironment, activation or inactivation of various pathways, targeting fibrosis, and telomerase inhibition.


2021 ◽  
pp. 190-194
Author(s):  
Sineida Berbert Ferreira ◽  
Rachel Berbert Ferreira ◽  
Afonso Cesar Neves Neto ◽  
Silvana Martins Caparroz Assef ◽  
Morton Scheinberg

Vitiligo is an autoimmune skin disease presenting with areas of depigmentation. Recent reports suggest that Janus kinase (JAK) inhibitors may be an effective therapy. In this case report, we show our experience with an adolescent patient with a long history of generalized and refractory vitiligo, for which treatment with topical tofacitinib, a JAK inhibitor, associated with phototherapy for 9 months, resulted in near complete repigmentation.


2020 ◽  
Vol 14 (Supplement_1) ◽  
pp. S409-S409
Author(s):  
A Clarke ◽  
J Di Paolo ◽  
B Downie ◽  
A Meng ◽  
N Mollova ◽  
...  

Abstract Background Inhibitors of the Janus kinase-signal transducers and activators of transcription (JAK-STAT) pathway have demonstrated efficacy in the treatment of rheumatoid arthritis (RA) and inflammatory bowel disease (IBD). Differences in selectivity of JAK inhibitors for JAK1, JAK2, JAK3 and TYK2 may influence their respective safety profiles, and the mechanisms responsible are not currently known. Filgotinib (FIL), a JAK1 inhibitor, did not negatively impact haemoglobin, LDL:HDL ratios or natural killer (NK) cell counts in clinical trials. Here, we compare the in vitro mechanistic profiles of four JAK inhibitors at clinically relevant doses. Methods JAK inhibitors (FIL, FIL metabolite [GS-829845], baricitinib [BARI], tofacitinib [TOFA], and upadacitinib [UPA]) were evaluated in vitro in human-cell-based assays. Growth of erythroid progenitors from human cord blood CD34+ cells was assessed using a HemaTox™ liquid expansion assay, NK cell proliferation was induced by IL-15 and LXR agonist-induced cholesteryl ester transfer protein (CETP) expression was assessed in the hepatic cell line, HepG2. Using assay-generated IC50 values and the reported human plasma concentrations from clinical studies, we calculated the target coverage for each JAK inhibitor at clinically relevant doses. The activity of FIL in humans was based on PK/PD modelling of FIL + GS-829845. Results Inhibition of cellular activity was calculated for each JAK inhibitor based on in vitro dose-response data, human exposure data and modelled PK/PD relationships. At clinically relevant doses, FIL resulted in lower calculated inhibition of NK cell proliferation compared with other JAK inhibitors. FIL 100 mg and 200 mg also reduced CETP expression, whereas other JAK inhibitors had no effect. There was no difference in the effect of FIL vs. other JAK inhibitors on erythroid progenitor cell differentiation or maturation. Conclusion FIL, a JAK1 inhibitor, resulted in less inhibition of NK cell proliferation compared with BARI, TOFA, and UPA. FIL also reduced LXR agonist-induced CETP expression, while the other inhibitors did not alter these levels. These results provide a potential mechanistic link between the observed reduction of CETP concentration following FIL treatment and the previously observed reduction in the LDL:HDL ratio in RA patients.


Author(s):  
Lucas Walz ◽  
Avi J. Cohen ◽  
Andre P. Rebaza ◽  
James Vanchieri ◽  
Martin D. Slade ◽  
...  

Background Novel coronavirus (SARS-CoV-2) has infected over 17 million. Novel therapies are urgently needed. Janus-kinase (JAK) inhibitors and Type I interferons have emerged as potential antiviral candidates for COVID-19 patients for their proven efficacy against diseases with excessive cytokine release and by their ability to promote viral clearance in past coronaviruses, respectively. We conducted a systemic review and meta-analysis to evaluate role of these therapies in COVID-19 patients. Methods MEDLINE and MedRxiv were searched until July 30th, 2020, including studies that compared treatment outcomes of humans treated with JAK-inhibitor or Type I interferon against controls. Inclusion necessitated data with clear risk estimates or those that permitted back-calculation. Results We searched 733 studies, ultimately including four randomized and eleven non-randomized clinical trials. JAK-inhibitor recipients had significantly reduced odds of mortality (OR, 0.12; 95%CI, 0.03-0.39, p=0.0005) and ICU admission (OR, 0.05; 95%CI, 0.01-0.26, p=0.0005), and had significantly increased odds of hospital discharge (OR, 22.76; 95%CI, 10.68-48.54, p<0.00001), when compared to standard treatment group. Type I interferon recipients had significantly reduced odds of mortality (OR, 0.19; 95%CI, 0.04-0.85, p=0.03), and increased odds of discharge bordering significance (OR, 1.89; 95%CI, 1.00-3.59, p=0.05). Conclusions JAK-inhibitor treatment is significantly associated with positive clinical outcomes regarding mortality, ICU admission, and discharge. Type I interferon treatment is associated with positive clinical outcomes regarding mortality and discharge. While these data show promise, additional randomized clinical trials are needed to further elucidate the efficacy of JAK-inhibitors and Type I interferons and clinical outcomes in COVID-19.


Blood ◽  
2016 ◽  
Vol 128 (22) ◽  
pp. 3105-3105 ◽  
Author(s):  
Naveen Pemmaraju ◽  
Bing Z Carter ◽  
Hagop M. Kantarjian ◽  
Jorge E. Cortes ◽  
Tapan M. Kadia ◽  
...  

Abstract Background: There is no standard therapy for patients (pts) with intermediate (Int)-2 or high risk myelofibrosis (MF) who have failed or are intolerant to Janus kinase (JAK) inhibitors such as ruxolitinib. Second mitochondria-derived activator of caspases (SMAC) mimetics, or inhibitors of apoptosis (IAP) antagonists, lead to increased apoptotic cancer cell death, especially in high TNFα-expressing tumor models. An emerging concept in myeloproliferative neoplasm (MPN) tumor pathobiology is the finding of significantly increased levels of TNFαin pts with MF(Fleischman AG et al, Blood 2011). Objectives: Primary objective: to determine efficacy (IWG-MRT, 2013) of LCL161 as monotherapy for pts with MF. Secondary objectives: to determine safety, durability of response, and changes in symptom burden [Myeloproliferative Neoplasm (MPN)-Total Symptom Score]. Exploratory objectives: to assess JAK2V617F and CALR allele burden; 28-gene panel for molecular mutations via next generation sequencing; and markers of IAP pathway degradation. Methods: We conducted an investigator-initiated, single-center, phase II study of LCL161 for pts with MF in a Simon's Optimal two-stage design. Pts age ≥18, PS=0-2, Int to high risk MF, who were intolerant to, ineligible for, or relapsed/refractory to JAK inhibitors were eligible. There was no threshold requirement for spleen size or platelet (plt) count, and pts with prior allogeneic stem cell transplant (SCT) were eligible. LCL161, an oral (po) drug, was given at starting dose 1500mg po once weekly. Each cycle=28 days. After 3 cycles, bone marrow exam and objective response assessments were performed. Results: From January 2015 to July 2016, 21 pts have been enrolled. Baseline characteristics: Median Age: 72 years [56-81], 86% with primary MF. Baseline laboratory values: Hb 9 g/dL (6.3-12); WBC 5.3 K/uL [1.1-38]; platelets 45 K/uL [6-1365]. JAK2V617F mutations were present in 14(67%), CALR mutations in 3(14%), and MPLW515L mutation in 1(5%) pt. Additionally, the most common other molecular mutations were: TET2(n=4); DNMT3A(n=3); RAS(n=1); EZH2(n=1). 17 (81%) had ≥2 prior therapies. Most common prior therapy was a JAK inhibitor (67%). 2 pts had prior SCT. By IPSS, 14 (67%) were high risk MF; 6(28%) were Int-2. Median number of cycles received=3[1-19], median treatment duration=2.8 months (mos)[0.2-16.7]. 19 pts are alive, with median follow-up of 7 mos[0.2-17.7]. Among 21 pts, 5 have been recently enrolled and have not yet reached 12-week evaluation period; among 16 evaluable pts, 6 pts had 9 objective responses (3 pts achieved 2 separate IWG-MRT 2013 response categories): Clinical improvement (CI) (anemia) in 2 pts; CI (Symptom) in 5 pts; CI (Spleen) in 1 pt; Cytogenetic remission in 1 pt. Grade 3/4 non-hematologic adverse events: syncope, n=2. No pts had cytokine release syndrome. Most common grade 1/2 non-hematologic toxicities: fatigue (n=10), nausea (n=10), dizziness/vertigo (n=9). Dose reductions: 7 pts: 6 pts to dose -1 level (1200 mg po once weekly) and 1 pt to dose -2 (900mg po once weekly); importantly, the most common reason was due to grade 2 fatigue (n=6). 10 pts are now off study [n=5 no response; n=3 toxicity; n=1 transformation to AML; n=1 patient on study proceeded to SCT]. Preliminary, ongoing correlative studies demonstrate on-target inhibition (by Western blot) of CIAP1 in eight pts: strong (n=4) or moderate (n=4); among the 6 clinically responding pts, 4 of 4 of these pts with viable/available samples for analysis demonstrated strong on-target CIAP1 inhibition. Conclusions: In this study, in a cohort of older pts with MF, 67% IPSS high risk, with median plt count of 45 at study entry, in whom 81% had received ≥2 prior therapies, we have observed objective responses in 38% (6/16 evaluable for response). LCL161 has a convenient (po, weekly) dosing schedule, represents a novel target for pts with MPNs, and is able to be administered to pts who have failed or intolerant/ineligible for JAK inhibitor therapy. Notably, grade 2 fatigue was commonly observed, and represents the most common reason for dose reduction and study discontinuation. Based on early responses observed, this study has met criteria for the pre-planned analysis for efficacy (Simon Stage 1) and therefore is able to proceed to Simon Stage 2. This clinical trial is registered at www.clinicaltrials.gov/ct2/show/NCT02098161. Disclosures Carter: PRISM Pharma/Eisai: Research Funding. Cortes:ARIAD: Consultancy, Research Funding; BMS: Consultancy, Research Funding; Novartis: Consultancy, Research Funding; Pfizer: Consultancy, Research Funding; Teva: Research Funding. DiNardo:Daiichi Sankyo: Other: advisory board, Research Funding; Novartis: Other: advisory board, Research Funding; Abbvie: Research Funding; Celgene: Research Funding; Agios: Other: advisory board, Research Funding. Bose:Novartis: Research Funding. Verstovsek:Incyte Corporation: Membership on an entity's Board of Directors or advisory committees, Research Funding; Genentech: Research Funding; Celgene: Research Funding; AstraZeneca: Research Funding; Geron: Research Funding; NS Pharma: Research Funding; Roche: Research Funding; Bristol-Myers Squibb: Research Funding; Promedior: Research Funding; CTI BioPharma Corp: Research Funding; Galena BioPharma: Research Funding; Pfizer: Research Funding; Seattle Genetics: Research Funding; Gilead: Research Funding; Lilly Oncology: Research Funding.


2021 ◽  
Vol 12 ◽  
Author(s):  
Daniele Cattaneo ◽  
Alessandra Iurlo

BCR-ABL1-negative myeloproliferative neoplasms are burdened by a reduced life expectancy mostly due to an increased risk of thrombo-hemorrhagic events, fibrotic progression/leukemic evolution, and infectious complications. In these clonal myeloid malignancies, JAK2V617F is the main driver mutation, leading to an aberrant activation of the Janus kinase-signal transducer and activator of transcription (JAK-STAT) signaling pathway. Therefore, its inhibition represents an attractive therapeutic strategy for these disorders. Several JAK inhibitors have entered clinical trials, including ruxolitinib, the first JAK1/2 inhibitor to become commercially available for the treatment of myelofibrosis and polycythemia vera. Due to interference with the JAK-STAT pathway, JAK inhibitors affect several components of the innate and adaptive immune systems such as dendritic cells, natural killer cells, T helper cells, and regulatory T cells. Therefore, even though the clinical use of these drugs in MPN patients has led to a dramatic improvement of symptoms control, organ involvement, and quality of life, JAK inhibitors–related loss of function in JAK-STAT signaling pathway can be a cause of different adverse events, including those related to a condition of immune suppression or deficiency. This review article will provide a comprehensive overview of the current knowledge on JAK inhibitors’ effects on immune cells as well as their clinical consequences, particularly with regards to infectious complications.


2021 ◽  
Vol 64 (2) ◽  
pp. 105-108
Author(s):  
Sun Hee Jang ◽  
Ji Hyeon Ju

Rheumatoid arthritis is a chronic inflammatory destructive disorder that affects the joints, muscles, and tendons accompanying various extra-articular manifestations. Traditional disease-modifying anti-rheumatic drugs (DMARDs) represent the basic treatment for rheumatoid arthritis. Over the last 20 years, biologic DMARDs (tumor necrosis factor inhibitors, interleukin-1 inhibitors, interleukin-6 inhibitors, T cell inhibitors, and B cell inhibitors) have been widely used as a novel class of DMARDs that have efficacy and efficiency. Discovery of the underlying pathogenesis of autoimmune disease enables us to develop new target therapies such as a Janus kinase (JAK) inhibitor. Activated JAK is known to activate signal transducers as well as activators of transcription (STAT) signaling. A JAK inhibitor is a type of medication that functions by inhibiting the JAK-STAT signaling pathway. In addition, it is easy to take a JAK inhibitor orally. In Korea, several JAK inhibitors have been approved. This review describes the types of JAK inhibitors, recommended doses, side effects, and updated European Alliance of Associations for Rheumatology guidelines. Clinicians should more often consider JAK inhibitors in the treatment of refractory rheumatoid arthritis in current rheumatology clinics


Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 62-62
Author(s):  
Oliver Weigert ◽  
Andrew A. Lane ◽  
Liat Bird ◽  
Nadja Kopp ◽  
Angela V Toms ◽  
...  

Abstract Abstract 62 Mutation within the kinase domain of tyrosine kinases is a common mechanisms of resistance to enzymatic inhibitors. Inhibitors of janus kinase 2 (JAK2) are under evaluation in patients with myeloproliferative neoplasms (MPNs), B-cell acute lymphoblastic leukemia (B-ALL) with rearrangements of the cytokine receptor subunit CRLF2, and other tumors with constitutive JAK2 signaling. To identify resistance mutations in JAK2, we randomly mutagenized human JAK2 R683G, which is observed in approximately half of CRLF2-rearranged B-ALL. We transduced the mutagenized JAK2 cDNA library into murine Ba/F3 cells that express CRLF2. Expression of CRLF2 and JAK2 R683G confers IL3 independent growth in Ba/F3 cells. The transduced population was selected in the JAK2-selective inhibitor NVP-BVB808 in the absence of IL3. Multiple BVB808-resistant clones were recovered that harbored either E864K, Y931C or G935R mutations in JAK2. Alignment of homologous regions of the JAK2 kinase domain (JH1) with ABL1 demonstrated that the three mutations are located in regions homologous to imatinib resistance hotspots in ABL1. Codons Y931 and G935 are within the hinge region of the kinase domain. Based on structural modeling, Y931C is likely to inhibit substrate binding. E864K is located in the middle of b3 following the P-loop in the N-lobe and may modify the structure and flexibility of the preceding P-loop, thus destabilizing the conformation required for inhibitor binding. We expressed JAK2 V617F alleles harboring Y931C, G935R or E864K in Ba/F3-EPOR cells and exposed the cells to the JAK2 enzymatic inhibitors JAK inhibitor-1, NVP-BSK805, TG101348, tofacitinib (formerly tasocitnib), ruxolitinib (formerly INCB18424) and BVB808. All three mutations conferred 2- to >10-fold resistance against BVB808, NVP-BSK805, TG101348, ruxolitinib and JAK inhibitor-1. Y931C and E864K but not G935R conferred resistance to tofactinib. Modeling of G935R indicated that a 935R side-chain would occlude the hydrophobic channel of the ATP-binding pocket. As a consequence, this mutation would decrease the binding affinity of compounds occupying the hydrophobic channel like JAK inhibitor-1 or BSK805, but not affect the potency of tofactinib, which does not bind in this region. Mutation of G935 to arginine, histidine or glutamine reduced the inhibitory effects of JAK inhibitor-1, but not tofacitinib, on JAK2 kinase domain activity. None of the codon 935 mutations had significant effects on Km or Vmaxin vitro. BVB808 treatment partially reduced activation state-specific phosphorylation of STAT5 in Ba/F3-EPOR/JAK2 V617F cells but not in Ba/F3-EPOR/JAK2 V617F/G935R or G935H cells. JAK2 is a known client of HSP90, and HSP90 inhibitors promote the degradation of both wild-type and mutant JAK2. We hypothesized that resistance mutations within the JAK2 kinase domain would not affect JAK2 degradation induced by HSP90 inhibitors. We assayed the cytotoxicity of the resorcinylic isoxazole amide NVP-AUY922 and the benzoquinone ansamycin 17-AAG in Ba/F3 cells that express the erythropoietin receptor (EPOR) and JAK2 V617F, which is observed in more than half of MPNs. Mutation of JAK2 V617F to include E864K, Y931C or G935R did not affect sensitivity to either AUY922 or 17-AAG. In fact, AUY922 was more active against cells harboring G935R (GI50, 3.87 nM) or E864K (GI50, 6.14 nM) compared to cells with no resistance mutation (GI50, 14.7 nM; p<0.05). Both HSP90 inhibitors had similar potency in Ba/F3-CRLF2 cells expressing the resistance mutations in cis with R683G. Treatment of both lines with AUY922 at levels achievable in vivo reduced P-JAK2, P-STAT5, and total JAK2 regardless of mutations that conferred resistance to enzymatic JAK2 inhibitors. Thus, HSP90 inhibitors maintain activity in JAK2-dependent cells with resistance mutations in JAK2. Treatment of JAK2-dependent cancers with HSP90 inhibitors is an attractive treatment strategy either up-front or upon the selection of resistance to JAK2 enzymatic inhibitors. Disclosures: Gaul: Novartis: Employment. Vangrevelinghe:Novartis: Employment. De Pover:Novartis: Employment. Regnier:Novartis: Employment. Erdmann:Novartis: Employment. Hofmann:Novartis: Employment. Eck:Novartis: Consultancy, Research Funding. Kung:Novartis Pharmaceuticals: Consultancy, Research Funding. Radimerski:Novartis Pharma AG: Employment. Weinstock:Novartis: Consultancy, Research Funding.


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