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With orphan designations

Overview

Rhabdoid tumor predisposition syndrome (RTPS) is an autosomal dominant disorder caused by germline SMARCB1 (RTPS1) or SMARCA4 (RTPS2) mutations, driving aggressive rhabdoid tumors (RTs) in infants. These malignant tumors most commonly arise in the CNS (AT/RTs), kidneys (RTKs), or soft tissues, often presenting synchronously before age 1. Prognosis is poor, with 12-month survival rates as low as 30% for renal RTs [1][2][15].

Population

  • Affects 1 in 1 million children under 15, with RTPS accounting for 25%-35% of RT cases [2][13].

  • Median diagnosis age: 4–7 months (prenatal to 5 years); 35% develop multifocal tumors [1][5][9].

Burden

  • Mortality: >50% of RTPS-associated RTs progress during chemotherapy; 5-year survival rates range 20%-50% [1][15].

  • Survivors face neurodevelopmental deficits, relapse risks, and secondary tumors [9][17].

  • Requires lifelong surveillance and genetic counseling for families due to 50% inheritance risk [5][9].

Therapies

  • Multimodal therapy: maximal surgical resection, anthracycline-based polychemotherapy, and radiation (age-adjusted) [4][7][9].

  • Emerging options: epigenetic agents (EZH2 inhibitors like tazemetostat), HDAC inhibitors, and high-dose chemotherapy with stem cell rescue [3][14][11].

Categories: rare genetic diseases, rare neoplastic diseases

Research Papers

32 drug discovery papers about Rhabdoid tumor predisposition syndrome, with 1 first-in-class emerging drug candidates forecasted to outperform the average preclinical success rate. Recent publications:

32 drug discovery papers about Rhabdoid tumor predisposition syndrome, with 1 first-in-class emerging drug candidates forecasted to outperform the average preclinical success rate. Recent publications:

categories:

Small molecules

small molecules
2025-11-07 | Current advances in the management of atypical teratoid rhabdoid tumors (ATRT).

Atypical teratoid rhabdoid tumors (ATRT) are rare, often lethal embryonal tumors of the central nervous system (CNS) that primarily affect very young children. Intensive multimodal approaches have resulted in improvements in survival albeit with significant associated toxicity. Recent molecular studies have led to the discovery of SMARCB1 inactivation and resultant BAF47/INI1 loss as the near-universal key genetic event that leads to widespread epigenetic dysregulation. Rarely, SMARCA4 encoding BRG1 is impacted. SMARCB1 and SMARCA4 are core subunits of the SWI/SNF chromatin remodeling complex, which is a fundamental epigenetic regulator of gene transcription. Up to a third of patients diagnosed with ATRT have Rhabdoid Tumor Predisposition Syndrome (RTPS) characterized by germline SMARCB1 (or SMARCA4) alterations. Patients with RTPS are at increased risk of developing synchronous or metachronous rhabdoid tumors outside the CNS. At least three molecular subgroups of ATRT (ATRT-TYR, ATRT-SHH, ATRT-MYC) have been identified through large-scale DNA methylation and transcriptomic studies, with each subgroup having distinct transcriptional, epigenomic and clinicopathologic features. In this book chapter, we will summarize key epidemiological and clinical features of ATRT, review current conventional multimodal regimens, summarize key findings from conducted prospective trials and recently concluded (2020 to present) meta-analyses, as well as discuss emerging targeted treatment approaches that exploit potential therapeutic vulnerabilities of this epigenetically influenced tumor.

Open article ↗



2024-10-22 | Approaches for prevention of tumors in patients with rhabdoid tumor predisposition syndrome.

Patients with rhabdoid tumor predisposition syndrome (RTPS) harbor germline alterations in the epigenetic regulator genes SMARCB1 or SMARCA4. Patients usually present with atypical teratoid/rhabdoid tumor (AT/RT) of the brain or malignant rhabdoid tumor (MRT) arising outside the central nervous system. Intensive treatment can lead to remissions, however tumors frequently recur or synchronous or metachronous tumors appear. A maintenance or secondary prevention regimen may prevent these aggressive tumors. Potential maintenance regimens may include low-dose traditional chemotherapy or different epigenetic therapies designed to target the epigenetic imbalance that drives RTs. We here review several potential maintenance regimens that may be useful in RTPS.

Open article ↗



2024-03-30 | Rhabdoid tumor predisposition syndrome: A historical review of treatments and outcomes for associated pediatric malignancies.

Rhabdoid tumor predisposition syndrome (RTPS) is a rare disorder associated with malignant rhabdoid tumor of the kidney (RTK), atypical teratoid rhabdoid tumor (ATRT), and/or other extracranial, extrarenal rhabdoid tumors (EERT), and these pediatric malignancies are difficult to treat. Presently, most of the information regarding clinical manifestations, treatment, and outcomes of rhabdoid tumors comes from large data registries and case series. Our current understanding of treatments for patients with rhabdoid tumors may inform how we approach patients with RTPS. In this manuscript, we review the genetic and clinical features of RTPS and, using known registry data and clinical reports, review associated tumor types ATRT, RTK, and EERT, closing with potential new approaches to treatment. We propose collaborative international efforts to study the use of SMARC (SWI/SNF-related, matrix-associated, actin-dependent regulator of chromatin)-targeting agents, high-dose consolidative therapy, and age-based irradiation of disease sites in RTPS.

Open article ↗



2023-12-13 | Current Molecular and Clinical Landscape of ATRT - The Link to Future Therapies.

ATRT is a highly aggressive and rare pediatric CNS tumor of very young children. Its genetic hallmark is bi-allelic inactivation of SMARCB1 encoding INI1. Rarely SMARCA4 encoding BRG1 is affected. Up to 30% are associated with constitutional heterozygous pathogenic variants in one of the two genes, giving rise to the Rhabdoid-Tumor-Predisposition-Syndromes (RTPS) 1 and 2. Characteristic DNA methylation profiles distinguish ATRT from other SMARCB1-deficient entities. Three distinct subtypes ATRT-MYC, -TYR, and -SHH are on record. ATRT-SHH may be further divided into the subgroups ATRT-SHH1A, -SHH1B, and -SHH2. The cure of ATRT remains challenging, notwithstanding an increasing understanding of molecular pathomechanisms and genetic background. The implementation of multimodal institutional treatment protocols has improved prognosis. Regardless of treatment approaches, clinical risk factors such as age, metastases, and DNA methylation subtype affect survival probability. We provide a critical appraisal of current conventional multimodal regimens and emerging targeted treatment approaches investigated in clinical trials and entity-specific registries. Intense treatment approaches featuring radiotherapy (RT) and high-dose chemotherapy (HDCT) face the difficulty of balancing tumor control and treatment-related toxicity. Current approaches focus on minimizing radiation fields by proton beam therapy or to withhold RT in HDCT-only approaches. Still, a 40-75% relapse rate upon first-line treatment reveals the need for novel treatment strategies in primary and even more in recurrent/refractory (r/r) disease. Among targeted treatments, immune checkpoint inhibitors and epigenetically active agents appear most promising. Success remains limited in single agent approaches. We hypothesize that mechanism-informed combination therapy will enhance response, as the low mutational burden of ATRT may contribute to acquiring resistance to single targeted agents. As DNA methylation group-specific gene expression profiles appear to influence response to distinct agents, the future treatment of ATRT should respect clinical and biological heterogeneity in risk group adjusted treatment protocols.

Open article ↗



2023-07-14 | Recurrent atypical teratoid/rhabdoid tumors (AT/RT) reveal discrete features of progression on histology, epigenetics, copy number profiling, and transcriptomics

Atypical teratoid/rhabdoid tumors (AT/RT) are the most common malignant brain tumors manifesting in infancy. They split into four molecular types. The major three (AT/RT-SHH, AT/RT-TYR, and AT/RT-MYC) all carry mutations in SMARCB1, the fourth quantitatively smaller type is characterized by SMARCA4 mutations (AT/RT-SMARCA4). Molecular characteristics of disease recurrence or metastatic spread, which go along with a particularly dismal outcome, are currently unclear. Here, we investigated tumor tissue from 26 patients affected by AT/RT to identify signatures of recurrences in comparison with matched primary tumor samples. Microscopically, AT/RT recurrences demonstrated a loss of architecture and significantly enhanced mitotic activity as compared to their related primary tumors. Based on DNA methylation profiling, primary tumor and related recurrence were grossly similar, but three out of 26 tumors belonged to a different molecular type or subtype after second surgery compared to related primary lesions. Copy number variations (CNVs) differed in six cases, showing novel gains on chromosome 1q or losses of chromosome 10 in recurrences as the most frequent alterations. To consolidate these observations, our cohort was combined with a data set of unmatched primary and recurrent AT/RT, which demonstrated chromosome 1q gain and 10 loss in 18% (n = 7) and 11% (n = 4) of the recurrences (n = 38) as compared to 7% (n = 3) and 0% (n = 0) in the primary tumors (n = 44), respectively. Similar to the observations made by DNA methylation profiling, RNA sequencing of our cohort revealed AT/RT primary tumors and matched recurrences clustering closely together. However, a number of genes showed significantly altered expression in AT/RT-SHH recurrences. Many of them are known tumor driving growth factors, involved in embryonal development and tumorigenesis, or are cell-cycle-associated. Overall, our work identifies subtle molecular changes that occur in the course of the disease and that may help define novel therapeutic targets for AT/RT recurrences.

Open article ↗



antibodies
2021-10-12 | SMARCA4: Implications of an Altered Chromatin-Remodeling Gene for Cancer Development and Therapy.

The SWI/SNF chromatin remodeling complex, via nucleosome topology modulation, regulates transcription. The SMARCA4 (BRG1) subunit codes for the ATPase energy engine of the SWI/SNF complex. SMARCA4 is a tumor suppressor that is aberrant in ∼5% to 7% of human malignancies. Class I SMARCA4 alterations (truncating mutations, fusions, and homozygous deletion) lead to loss of function whereas class II alterations (missense mutations) have a dominant negative/gain-of-function effect and/or loss-of function. SMARCA4 alterations typify the ultra-rare small cell carcinomas of the ovary hypercalcemic type (SCCOHT) and SMARCA4-deficient thoracic and uterine sarcomas; they are also found in a subset of more common tumors, for example, lung, colon, bladder, and breast carcinomas. Germline variants in the SMARCA4 gene lead to various hereditary conditions: rhabdoid tumor predisposition syndrome-2 (RTPS2), characterized by loss-of-function alterations and aggressive rhabdoid tumors presenting in infants and young children; and Coffin-Siris syndrome, characterized by dominant negative/gain-of function alterations and developmental delays, microcephaly, unique facies, and hypoplastic nails of the fifth fingers or toes. A minority of rhabdoid tumors have a germline SMARCA4 variant as do >40% of women with SCCOHT. Importantly, immune checkpoint blockade has shown remarkable, albeit anecdotal, responses in SCCOHT. In addition, there is ongoing research into BET, EZH2, HDAC, CDK4/6, and FGFR inhibitors, as well as agents that might induce synthetic lethality via DNA damage repair impairment (ATR inhibitors and platinum chemotherapy), or via the exploitation of mitochondrial oxidative phosphorylation inhibitors or AURKA inhibitors, in SMARCA4-aberrant cancers.

Open article ↗



2020-01-10 | Tumor mutation burden, DNA mismatch repair status and checkpoint immunotherapy markers in primary and relapsed malignant rhabdoid tumors.

Malignant rhabdoid tumor (MRT) is a rare, aggressive pediatric tumor of nuclear lineage. It is mainly characterized by germline or somatic SMARCB1 (INI1) driver mutations. To characterize the potential for immunotherapy in untreated and treated MRT, current study investigated tumor mutational burden (TMB) and other biomarkers in MRT. Normal-tumor paired whole exome sequencing (WES) and/or immunohistochemistry (IHC) of DNA mismatch repair (MMR) proteins, PD-L1, PD-1 and CD8 were performed in 16 cases, some with both primary and relapsed tumor. Five cases subjected to WES demonstrated germline SMARCB1 (INI1) mutations. TMB was 0.7-1.07/Mb in 4 of the 5 primary untreated tumors, and 33.81/Mb in one case with pathogenic MMR, POLD, and POLE mutations. Ten cases tested for MMR status by IHC showed retained nuclear expression of the proteins. Eight of the 16 cases (8/16, 50%) showed membranous expression of PD-L1 in 10-70% of tumor cells (tumor proportion score, TPS). Nine cases (9/16, 56.3%) showed high (>2/HPF) tumor infiltrating lymphocytes with PD-1 staining ranging 10-60%, correlating with tumor PD-L1 staining (p < 0.0001). Between post-treatment metastatic tumors and the pre-treatment primary tumors, TMB was similar while PD-L1 TPS was similar or lower. MRT has a low TMB. Nonetheless, because a subset of MRT cases have a PD-L1 TPS greater than the cutoff for checkpoint therapy in other malignancies, the utility of immune checkpoint inhibitors should be studied in this patient population.

Open article ↗



small molecules
2025-11-07 | Current advances in the management of atypical teratoid rhabdoid tumors (ATRT).

Atypical teratoid rhabdoid tumors (ATRT) are rare, often lethal embryonal tumors of the central nervous system (CNS) that primarily affect very young children. Intensive multimodal approaches have resulted in improvements in survival albeit with significant associated toxicity. Recent molecular studies have led to the discovery of SMARCB1 inactivation and resultant BAF47/INI1 loss as the near-universal key genetic event that leads to widespread epigenetic dysregulation. Rarely, SMARCA4 encoding BRG1 is impacted. SMARCB1 and SMARCA4 are core subunits of the SWI/SNF chromatin remodeling complex, which is a fundamental epigenetic regulator of gene transcription. Up to a third of patients diagnosed with ATRT have Rhabdoid Tumor Predisposition Syndrome (RTPS) characterized by germline SMARCB1 (or SMARCA4) alterations. Patients with RTPS are at increased risk of developing synchronous or metachronous rhabdoid tumors outside the CNS. At least three molecular subgroups of ATRT (ATRT-TYR, ATRT-SHH, ATRT-MYC) have been identified through large-scale DNA methylation and transcriptomic studies, with each subgroup having distinct transcriptional, epigenomic and clinicopathologic features. In this book chapter, we will summarize key epidemiological and clinical features of ATRT, review current conventional multimodal regimens, summarize key findings from conducted prospective trials and recently concluded (2020 to present) meta-analyses, as well as discuss emerging targeted treatment approaches that exploit potential therapeutic vulnerabilities of this epigenetically influenced tumor.

Open article ↗



2024-10-22 | Approaches for prevention of tumors in patients with rhabdoid tumor predisposition syndrome.

Patients with rhabdoid tumor predisposition syndrome (RTPS) harbor germline alterations in the epigenetic regulator genes SMARCB1 or SMARCA4. Patients usually present with atypical teratoid/rhabdoid tumor (AT/RT) of the brain or malignant rhabdoid tumor (MRT) arising outside the central nervous system. Intensive treatment can lead to remissions, however tumors frequently recur or synchronous or metachronous tumors appear. A maintenance or secondary prevention regimen may prevent these aggressive tumors. Potential maintenance regimens may include low-dose traditional chemotherapy or different epigenetic therapies designed to target the epigenetic imbalance that drives RTs. We here review several potential maintenance regimens that may be useful in RTPS.

Open article ↗



2024-03-30 | Rhabdoid tumor predisposition syndrome: A historical review of treatments and outcomes for associated pediatric malignancies.

Rhabdoid tumor predisposition syndrome (RTPS) is a rare disorder associated with malignant rhabdoid tumor of the kidney (RTK), atypical teratoid rhabdoid tumor (ATRT), and/or other extracranial, extrarenal rhabdoid tumors (EERT), and these pediatric malignancies are difficult to treat. Presently, most of the information regarding clinical manifestations, treatment, and outcomes of rhabdoid tumors comes from large data registries and case series. Our current understanding of treatments for patients with rhabdoid tumors may inform how we approach patients with RTPS. In this manuscript, we review the genetic and clinical features of RTPS and, using known registry data and clinical reports, review associated tumor types ATRT, RTK, and EERT, closing with potential new approaches to treatment. We propose collaborative international efforts to study the use of SMARC (SWI/SNF-related, matrix-associated, actin-dependent regulator of chromatin)-targeting agents, high-dose consolidative therapy, and age-based irradiation of disease sites in RTPS.

Open article ↗



2023-12-13 | Current Molecular and Clinical Landscape of ATRT - The Link to Future Therapies.

ATRT is a highly aggressive and rare pediatric CNS tumor of very young children. Its genetic hallmark is bi-allelic inactivation of SMARCB1 encoding INI1. Rarely SMARCA4 encoding BRG1 is affected. Up to 30% are associated with constitutional heterozygous pathogenic variants in one of the two genes, giving rise to the Rhabdoid-Tumor-Predisposition-Syndromes (RTPS) 1 and 2. Characteristic DNA methylation profiles distinguish ATRT from other SMARCB1-deficient entities. Three distinct subtypes ATRT-MYC, -TYR, and -SHH are on record. ATRT-SHH may be further divided into the subgroups ATRT-SHH1A, -SHH1B, and -SHH2. The cure of ATRT remains challenging, notwithstanding an increasing understanding of molecular pathomechanisms and genetic background. The implementation of multimodal institutional treatment protocols has improved prognosis. Regardless of treatment approaches, clinical risk factors such as age, metastases, and DNA methylation subtype affect survival probability. We provide a critical appraisal of current conventional multimodal regimens and emerging targeted treatment approaches investigated in clinical trials and entity-specific registries. Intense treatment approaches featuring radiotherapy (RT) and high-dose chemotherapy (HDCT) face the difficulty of balancing tumor control and treatment-related toxicity. Current approaches focus on minimizing radiation fields by proton beam therapy or to withhold RT in HDCT-only approaches. Still, a 40-75% relapse rate upon first-line treatment reveals the need for novel treatment strategies in primary and even more in recurrent/refractory (r/r) disease. Among targeted treatments, immune checkpoint inhibitors and epigenetically active agents appear most promising. Success remains limited in single agent approaches. We hypothesize that mechanism-informed combination therapy will enhance response, as the low mutational burden of ATRT may contribute to acquiring resistance to single targeted agents. As DNA methylation group-specific gene expression profiles appear to influence response to distinct agents, the future treatment of ATRT should respect clinical and biological heterogeneity in risk group adjusted treatment protocols.

Open article ↗



2023-07-14 | Recurrent atypical teratoid/rhabdoid tumors (AT/RT) reveal discrete features of progression on histology, epigenetics, copy number profiling, and transcriptomics

Atypical teratoid/rhabdoid tumors (AT/RT) are the most common malignant brain tumors manifesting in infancy. They split into four molecular types. The major three (AT/RT-SHH, AT/RT-TYR, and AT/RT-MYC) all carry mutations in SMARCB1, the fourth quantitatively smaller type is characterized by SMARCA4 mutations (AT/RT-SMARCA4). Molecular characteristics of disease recurrence or metastatic spread, which go along with a particularly dismal outcome, are currently unclear. Here, we investigated tumor tissue from 26 patients affected by AT/RT to identify signatures of recurrences in comparison with matched primary tumor samples. Microscopically, AT/RT recurrences demonstrated a loss of architecture and significantly enhanced mitotic activity as compared to their related primary tumors. Based on DNA methylation profiling, primary tumor and related recurrence were grossly similar, but three out of 26 tumors belonged to a different molecular type or subtype after second surgery compared to related primary lesions. Copy number variations (CNVs) differed in six cases, showing novel gains on chromosome 1q or losses of chromosome 10 in recurrences as the most frequent alterations. To consolidate these observations, our cohort was combined with a data set of unmatched primary and recurrent AT/RT, which demonstrated chromosome 1q gain and 10 loss in 18% (n = 7) and 11% (n = 4) of the recurrences (n = 38) as compared to 7% (n = 3) and 0% (n = 0) in the primary tumors (n = 44), respectively. Similar to the observations made by DNA methylation profiling, RNA sequencing of our cohort revealed AT/RT primary tumors and matched recurrences clustering closely together. However, a number of genes showed significantly altered expression in AT/RT-SHH recurrences. Many of them are known tumor driving growth factors, involved in embryonal development and tumorigenesis, or are cell-cycle-associated. Overall, our work identifies subtle molecular changes that occur in the course of the disease and that may help define novel therapeutic targets for AT/RT recurrences.

Open article ↗



antibodies
2021-10-12 | SMARCA4: Implications of an Altered Chromatin-Remodeling Gene for Cancer Development and Therapy.

The SWI/SNF chromatin remodeling complex, via nucleosome topology modulation, regulates transcription. The SMARCA4 (BRG1) subunit codes for the ATPase energy engine of the SWI/SNF complex. SMARCA4 is a tumor suppressor that is aberrant in ∼5% to 7% of human malignancies. Class I SMARCA4 alterations (truncating mutations, fusions, and homozygous deletion) lead to loss of function whereas class II alterations (missense mutations) have a dominant negative/gain-of-function effect and/or loss-of function. SMARCA4 alterations typify the ultra-rare small cell carcinomas of the ovary hypercalcemic type (SCCOHT) and SMARCA4-deficient thoracic and uterine sarcomas; they are also found in a subset of more common tumors, for example, lung, colon, bladder, and breast carcinomas. Germline variants in the SMARCA4 gene lead to various hereditary conditions: rhabdoid tumor predisposition syndrome-2 (RTPS2), characterized by loss-of-function alterations and aggressive rhabdoid tumors presenting in infants and young children; and Coffin-Siris syndrome, characterized by dominant negative/gain-of function alterations and developmental delays, microcephaly, unique facies, and hypoplastic nails of the fifth fingers or toes. A minority of rhabdoid tumors have a germline SMARCA4 variant as do >40% of women with SCCOHT. Importantly, immune checkpoint blockade has shown remarkable, albeit anecdotal, responses in SCCOHT. In addition, there is ongoing research into BET, EZH2, HDAC, CDK4/6, and FGFR inhibitors, as well as agents that might induce synthetic lethality via DNA damage repair impairment (ATR inhibitors and platinum chemotherapy), or via the exploitation of mitochondrial oxidative phosphorylation inhibitors or AURKA inhibitors, in SMARCA4-aberrant cancers.

Open article ↗



2020-01-10 | Tumor mutation burden, DNA mismatch repair status and checkpoint immunotherapy markers in primary and relapsed malignant rhabdoid tumors.

Malignant rhabdoid tumor (MRT) is a rare, aggressive pediatric tumor of nuclear lineage. It is mainly characterized by germline or somatic SMARCB1 (INI1) driver mutations. To characterize the potential for immunotherapy in untreated and treated MRT, current study investigated tumor mutational burden (TMB) and other biomarkers in MRT. Normal-tumor paired whole exome sequencing (WES) and/or immunohistochemistry (IHC) of DNA mismatch repair (MMR) proteins, PD-L1, PD-1 and CD8 were performed in 16 cases, some with both primary and relapsed tumor. Five cases subjected to WES demonstrated germline SMARCB1 (INI1) mutations. TMB was 0.7-1.07/Mb in 4 of the 5 primary untreated tumors, and 33.81/Mb in one case with pathogenic MMR, POLD, and POLE mutations. Ten cases tested for MMR status by IHC showed retained nuclear expression of the proteins. Eight of the 16 cases (8/16, 50%) showed membranous expression of PD-L1 in 10-70% of tumor cells (tumor proportion score, TPS). Nine cases (9/16, 56.3%) showed high (>2/HPF) tumor infiltrating lymphocytes with PD-1 staining ranging 10-60%, correlating with tumor PD-L1 staining (p < 0.0001). Between post-treatment metastatic tumors and the pre-treatment primary tumors, TMB was similar while PD-L1 TPS was similar or lower. MRT has a low TMB. Nonetheless, because a subset of MRT cases have a PD-L1 TPS greater than the cutoff for checkpoint therapy in other malignancies, the utility of immune checkpoint inhibitors should be studied in this patient population.

Open article ↗



Access all drug discovery papers and probability of success in trials forecasts:

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Drug Discovery Landscape

0 orphan drug designations.

0 orphan drug designations.

Explority AI logo

228 Park Ave S,
New York, USA.

At Explority, we build first-of-its-kind AI to bring clarity to the earliest and riskiest stages of pharmaceutical research by forecasting which therapies are most likely to succeed. Explority AI web and mobile applications are properties of the Explority AI Inc., a company registered in the United States (File No. 10320493).
For all questions: support@explority.ai

Copyright © 2026 Explority AI Inc.

Explority AI logo

228 Park Ave S,
New York, USA.

At Explority, we build first-of-its-kind AI to bring clarity to the earliest and riskiest stages of pharmaceutical research by forecasting which therapies are most likely to succeed. Explority AI web and mobile applications are properties of the Explority AI Inc., a company registered in the United States (File No. 10320493).
For all questions: support@explority.ai

Copyright © 2026 Explority AI Inc.

Explority AI logo

228 Park Ave S,
New York, USA.

At Explority, we build first-of-its-kind AI to bring clarity to the earliest and riskiest stages of pharmaceutical research by forecasting which therapies are most likely to succeed. Explority AI web and mobile applications are properties of the Explority AI Inc., a company registered in the United States (File No. 10320493).
For all questions: support@explority.ai

Copyright © 2026 Explority AI Inc.