Full-Time
Global professional association advancing cancer research
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Philadelphia, PA, USA
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The AACR is the world’s largest professional organization focused on cancer research. It brings together researchers, health professionals, and patient advocates to advance prevention, diagnosis, and treatment of cancer. Members gain access to a global network of experts and participate in more than 30 conferences and educational events each year, including the major AACR Annual Meeting. The organization publishes 10 peer‑reviewed scientific journals and a magazine for survivors and caregivers, and it funds research directly as well as with partner groups like Stand Up To Cancer. It also engages in policy work to highlight the value of cancer research and biomedical science. The AACR’s offerings include membership, scholarly journals, conferences, grants, and policy advocacy, all designed to move cancer research toward near‑term patient benefit. Its goal is to prevent and cure cancer by accelerating research and turning scientific findings into real-world impact for patients worldwide.
Company Size
201-500
Company Stage
N/A
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Headquarters
Philadelphia, Pennsylvania
Founded
1907
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Harmonizing data collection for precision oncology: AACR Project GENIE(R) Data Model. Precision oncology relies on large amounts of data, often combining multiple datasets from different institutions, to produce reliable, representative, and clinically meaningful results to guide cancer prevention, diagnosis, and treatment. Despite standardization efforts, inconsistencies in the practices of data capturing, definition, and storage persist and represent a big challenge for researchers. In an attempt to simplify data harmonization, the AACR Project GENIE(R)(Genomics Evidence Neoplasia Information Exchange) consortium created a new data model, called GENIE Data Model (GDM), an open-access framework that helps standardize longitudinal clinical and genomic data collection across solid tumors at different stages of a patient's cancer journey from diagnosis through long-term outcomes. GDM, which was the result of a collaboration among subject matter experts from academia and the government and included the patient advocate perspective, was released publicly on April 28 and presented during a Methods Workshop at the AACR Annual Meeting 2026. The model was also described in a paper published in Cancer Research Communications. What is a Data Model? A data model is a blueprint that defines what data will be collected, how the data will be organized, and the rules for storing and using the information in a consistent way. "There is a lot of clinical information that can be repurposed from study to study," said Jennifer Hoppe, MPH, a senior clinical project manager at Project GENIE and the first author of the paper. "Suppose you are an academic team that is conducting a research project for which you need to collect patient data across different clinical studies, such as demographics, cancer diagnosis, what drugs the patients received, and when their treatment started and ended. Rather than the researchers having to build a model for how they collect all this information for every single study, we have done that work in advance and built a model every research team can directly use to start entering data right away. I think most researchers would find this work really helpful." Why a new model? "Many data models already exist, each with its own complexity and built with a specific purpose in mind," said Hoppe. "The GDM was built to be applicable to many different solid tumors and different use cases while aligned to currently used standards." During the Annual Meeting session, chair Jeremy L. Warner, MD, a professor of medicine at Brown University, who was one of the co-lead principal investigators on the GDM project, discussed the importance of data harmonization. He pointed out that oncology data, particularly real-world data, are still fragmented, with incompatible electronic health records, mismatches and different nomenclatures in genomic annotations, inconsistently recorded outcomes, and a lack of granular longitudinal data. The GDM was created with these challenges in mind. It was designed as a modular, tumor-agnostic core, into which disease-specific extensions can be plugged in as needed, and to be extensible and scalable in the future, Warner said. He emphasized that the GDM model is about breaking down data silos and enabling a connected ecosystem for oncology research. The work to develop the GDM builds on more than a decade of experience of the Project GENIE consortium in assembling and growing the Project GENIE registry of real-world genomic data through data sharing among 20 leading international cancer centers. "The GDM was specifically designed to facilitate the collection of more key clinical variables programmatically, allowing GENIE to get closer to our goal of documenting complete patient cancer experiences for every patient in the registry," said Shawn M. Sweeney, PhD, senior director of the AACR Project GENIE Coordinating Center. "Ultimately, the GDM lays the foundation for fully federating the registry in the near future." Hoppe likened the registry to an iceberg. "What we have available is just the tip, but there is all that ice submerged still, all that information that exists on which we don't have visibility yet because we can't collect it," she said. "But as we deploy this model and we are able to collect more data, eventually we will see more and more of the full picture of that iceberg for all the patients in the GENIE registry." The development of the GENIE Data Model. The researchers reached out to members of the oncology community to assemble a team of 13 subject matter experts who were divided into four working groups. Hoppe explained that their first task was to establish which essential variables need to be collected to characterize a tumor exhaustively. These variables were organized into four content areas or clinical domains, spanning initial diagnosis through treatment and long-term outcomes, and each working group focused on its area of expertise: diagnosis, treatment, outcomes, or person-centered metrics, the latter including demographic variables, social determinants of health, and comorbidities. "Using their expert opinion, the working groups really helped shape what we would need to include so that the model is not composed of thousands of variables but encompasses the core group of variables that can give a reliable picture for almost any solid tumor," Hoppe explained. "We wanted the model to be widely applicable, but also specific enough to provide the information a researcher would need." Once the experts defined the variables and the corresponding parameters and value sets, the next step was to build that information into a database collection tool. Specifically, the team used REDCap (Research Electronic Data Capture), a specialized web-based software platform, but the GDM can be deployed within any data collection tool, added Hoppe. One important goal for the GDM was interoperability, a term that describes the ability of different information systems to communicate and exchange data seamlessly. In this case, each data variable in the GDM has a shared definition and parameters that are aligned to existing standards and terminologies and captured with the same value set. In addition, the GDM can work both with manually entered data and with data that have already been collected and stored in a structured way (for example, in Excel files or enterprise data warehouses), to minimize the curation effort. "Eventually, in the future, we would like to have 100% structured data supporting the Project GENIE registry, but since we are not there yet, we needed to develop something that was flexible enough to be able to incorporate both manually collected and structured data," said Hoppe. Deploying the model. The GDM is hosted in a repository on the cloud-based platform GitHub and can be accessed through a Creative Commons license. Researchers have access to three components: the database file, which can be loaded into REDCap or other data collection tools; an Excel file that contains the data dictionary, which provides an-easy-to-read overview of the variables and corresponding definitions and value sets; and a curation directives manual, or data completion guideline, which provides additional details to ensure homogenous use of the model across institutions. Limitations and what comes next. Since it was designed as a large pancancer model, GDM may not be entirely specific for each research project, said Hoppe. However, the team built it to be modifiable, so that the users can add additional fields as needed to accommodate their research questions. Another limitation is that the model is currently only suitable for solid tumors and cannot be utilized for studies on hematologic malignancies, she added. "We are working on an expansion that we will hopefully be able to deploy within the next year or two." The team is also developing packages of prebuilt algorithms to be applied by end users to perform calculations on the data collected by the model and obtain new, derived variables to create an analytic dataset. "For example, one could use a provided algorithm to calculate the duration of a treatment from the start and end dates of that treatment," said Hoppe. "The community can expect annual updates, and we hope end users will share any derivatives they create back with the broader research community so that we can all get to cures as quickly as possible," concluded Sweeney. AACR Annual Meeting sessions are available for virtual viewing for all registered attendees through October 2026.
Research Spotlight: highlights from the AACR Drug Discovery and Development conference. Share Tweet Editor's note: The "Research Spotlight" series is written by Dr. Anna Berkenblit, PanCAN's Chief Scientific and Medical Officer. Each month, Dr. Berkenblit shares her insights into the latest news and research in pancreatic cancer. Follow Dr. Berkenblit on X and LinkedIn. I recently had the pleasure of attending the inaugural American Association for Cancer Research (AACR) Drug Discovery and Development (D3) conference. The meeting featured more than 600 participants, with invited speakers from academia, pharma, biotech, regulatory agencies and venture capital. It was a unique opportunity to have a collective conversation with all the stakeholders dedicated to moving the field forward. There were more than 200 poster presentations and over 80 oral presentations - it's clearly an exciting time for the field. The overarching message I took away from the conference was that Pancreatic Cancer Action Network, Inc. is all working together to streamline the drug development process to accelerate progress for patients. Drug development refers to the entire journey - from the identification of a target (molecule or mechanism) to production of an investigational drug that undergoes lab-based testing, initial studies in patients and, ultimately, clinical trials leading to potential drug approval. This process has historically been fraught with failure, extremely time-consuming, expensive and required many patients' participation. Some strategies that were discussed at the meeting to streamline the drug development process included centralizing the Institutional Review Board (IRB) or having one universal contract amongst all the clinical trial sites. The IRB serves to ensure that a clinical trial is designed to be safe and minimize risks to patient participation. Working through IRBs at multiple clinical trial sites can be cumbersome and redundant. Similarly, necessary contracting can be made more efficient if centralized among all the sites and stakeholders, rather than handled on a one-off basis. Having a centralized electronic medical record system can also help with storing and collecting data and minimizing redundancies when navigating multiple systems. Finally, there was discussion of better integration and partnership between the U.S. Food and Drug Administration (FDA) and academic sites. I hope that many of these ideas are realized in the near future, as the entire field of drug development for cancer stands to benefit from them. Turning now to what's exciting for pancreatic cancer specifically, I was interested to learn more about some new classes of drugs that are being developed against novel targets, including PRMT5, which may be a relevant target for up to 40% of pancreatic tumors. Previous efforts to target PRMT5 have involved cooperation with a molecule called SAM, but data showed that PRMT5-SAM inhibitors were not selective against cancer cells and therefore caused harm to healthy cells and led to toxicity. Researchers also discovered that the status of a gene known as MTAP could be used as a biomarker to predict responsiveness to PRMT5 inhibitors that cooperate with a molecule known as MTA. Data suggest that PRMT5-MTA cooperative drugs are effective and selective for cancer cells that have MTAP deletion - a phenomenon known as synthetic lethality when two conditions are necessary to kill the cancer cells. This helps spare healthy cells and reduces systemic toxicity. There were recent compelling data released about combining a PRMT5-MTA cooperative inhibitor known as vopimetostat with the RAS-targeting drug, daraxonrasib, in patients with previously treated metastatic pancreatic cancer. Although numbers were small and the trial was in an early phase, a response rate of 92% is definitely something to keep an eye on. Speaking of RAS inhibition, it was no surprise that RAS inhibitors were covered at the D3 conference. In addition to RASONQUE(TM)(daraxonrasib), which was approved by the FDA on August 26, 2026, for the treatment of adults with metastatic pancreatic adenocarcinoma who have received at least one prior systemic therapy or are not candidates for multiagent systemic therapy, there are nearly 100 investigational RAS-targeting drugs currently in various phases of clinical development. Some, like RASONQUE, target all activated RAS molecules, while others only target a specific mutation in a subset of RAS known as KRAS, which is mutated in more than 90% of pancreatic tumors. An excellent presentation by Dr. Ignacio Garrido-Laguna, who was featured in a recent PanCAN webinar, focused on redefining targeting RAS. Although a very new therapeutic approach, early learnings show mechanisms of resistance and clues about which patients' tumors would be most likely to respond. As these new RAS-targeting drugs are being developed, it's important to work in real time to learn which patients are most likely to benefit, devise novel combination strategies and determine ways to mitigate or prevent resistance. In fact, earlier this month, a new paper was published by scientists at Revolution Medicines, the company producing daraxonrasib, in collaboration with academic researchers to outline how cancer cells become resistant to RAS inhibition and potential ways to overcome that resistance. Pancreatic Cancer Action Network, Inc. anticipate learning more about adaptation mechanisms from the ongoing work that Break Through Cancer is doing through deep analysis of on-treatment biopsies from clinical trial participants with pancreatic cancer. It is admirable that this research is being done concurrently with clinical trials to support patients today and to pave the way for future innovations. It was clear from the AACR D3 meeting that stakeholders are passionately working toward more efficient systems and more effective and better tolerated therapies that patients deserve. It was exciting to be in the room at this inaugural and very successful conference. I have already started to take the learnings back to conversations within PanCAN and with its external partners that are part of the clinical trials ecosystem so that Pancreatic Cancer Action Network, Inc. can continue to accelerate progress for patients with pancreatic cancer. Donate today to support PanCAN's urgent efforts to improve outcomes for everyone affected by pancreatic cancer. Share Tweet You may also be interested in...
WWU's Academic Advising and Student Achievement is now Academic Advising and Career Readiness. August 17, 2026 On July 22, WWU's Academic Affairs division announced that Career Services has merged with the Academic Advising and Student Achievement Center to become Academic Advising and Career Readiness. "While career services remains an important part of the work, career readiness encompasses the broader process of exploration through life after graduation" said Director of Academic Advising and Career Readiness, Meagan Bryson. AACR's new structure will augment current academic advising, which aids students in achieving academic success, retention, graduation preparation, post graduation academic pathways and career readiness. AACR will be hiring for three currently vacant positions to support this mission. These positions will reinforce the work already being done to prepare students for graduation and beyond and will allow for the AACR to best serve the Western student body. Under its new title, AACR will continue the services students have received from Career Services - career fairs, the career closet, drop-in career workshops, resume and cover letter reviews, and career information sessions. An updated list of services and events will be available on the AARC's website prior to the start of Fall Quarter. For questions, please contact the Director of Academic Advising and Career Readiness Center, Meagan Bryson at [email protected] or 360-650-2161.
MRA's Melanoma Biorepository featured at AACR's Special Conference on Breaking Barriers in the Fight Against Rare Cancers. Jul 29, 2026 Individuals experiencing a rare cancer like acral melanoma or mucosal melanoma often face unique challenges such as delayed diagnoses, limited treatment options, and poor health outcomes. Research is critical for changing this, but given the rarity of acral and mucosal melanoma, investigators and clinicians encounter difficulties in accessing the patient samples and preclinical models needed to better understand these rare cancers and develop new treatments. To overcome this barrier, the Melanoma Research Alliance (MRA) has made advancing rare melanoma research a major priority. MRA has developed resources that now make it easier for researchers to study these rare melanoma subtypes, including the Rare Melanoma Model Catalogs, which connect researchers with preclinical models used for scientific studies, and the newly launched MRA Melanoma Biorepository, where patients can donate tissue samples to help advance scientific studies on melanoma by expanding researcher access to tissue samples. The MRA Melanoma Biorepository was recently featured at the American Association for Cancer Research (AACR) Special Conference on Breaking Barriers in the Fight Against Rare Cancers held in Vancouver, British Columbia, Canada, which convenes experts across academia, industry, and patient advocacy to discuss research innovation for rare cancers - from diagnosis to treatment and clinical trial design. As part of the conference, attendees had the opportunity to learn about how patients with melanoma are helping to advance research through the MRA Melanoma Biorepository. Dr. Kasey Couts, Associate Professor at the University of Colorado Anschutz Medical Campus (UCAMC) and Co-Director of the CU Center for Rare Melanomas, presented insights from this new MRA initiative. The MRA Melanoma Biorepository is a patient-directed effort designed to collect tissue samples from patients with melanoma and share them with qualified researchers to help accelerate translational and clinical studies across melanoma subtypes, including cutaneous melanoma (the most common form of melanoma) and especially the rarer acral and mucosal melanomas. As one of the leaders behind this program, Dr. Couts oversees the biobanking operations at UCAMC, where the MRA Melanoma Biorepository is physically housed. Dr. Couts' presentation illuminates how the MRA Melanoma Biorepository works, the simple steps patients with melanoma can take to donate their tissue samples, and how investigators and clinicians can develop long-standing partnerships with the biorepository. What is the MRA Melanoma Biorepository and why is it important? The MRA Melanoma Biorepository is a patient-directed program that gives individuals with acral, mucosal, and cutaneous melanoma the opportunity to donate their tissue samples-including tumor tissue, normal tissue, blood, and other sample types-to support melanoma research. These donated samples help researchers to better understand how melanoma develops and progresses, identify new approaches for diagnosis and surveillance, and advance the development of new and more effective treatments. Dr. Couts' presentation highlighted that one of the greatest challenges in rare melanoma research is access to patient samples. Because acral and mucosal melanoma are uncommon, researchers often have difficulty obtaining enough tissue samples to conduct meaningful studies. By providing donated samples to qualified researchers, the MRA Melanoma Biorepository helps overcome this barrier. Dr. Couts also shared other challenges endured by researchers: even when tissue samples exist, they are often difficult to share across institutions due to complex sharing policies or limited infrastructure for distributing patient samples. The MRA Melanoma Biorepository is helping to address these barriers by creating a centralized resource that makes it easier for researchers to access high-quality patient samples in a timely manner. How can patients donate tissue to the MRA Melanoma Biorepository? Participating in the MRA Melanoma Biorepository is designed to be as simple as possible. Patients with acral, mucosal, or cutaneous melanoma can donate tissue samples from a previous or future biopsy or surgery, as well as donate blood or provide a cheek swab. As a part of her presentation, Dr. Couts explained how the donation process works: Step 1: Enroll in the biorepository. Patients begin by emailing [email protected] to express their interest in participating. They receive a consent form, and those who choose to participate return the signed consent along with a brief questionnaire about their demographics and clinical history. This information helps the biorepository acquire the donated sample and provides qualified researchers with more information about how the sample can be used for a specific research study. Step 2: Tissue collection. Once enrolled, MRA biorepository staff coordinates with the patient's clinical team to obtain the donated tissue sample. Tissue collection kits are sent to the patient's clinical team who then transfer the collected sample to the biorepository at the UCAMC, directed by Dr. Couts. How are patient tissue samples processed and stored at the MRA Melanoma Biorepository? Dr. Couts' presentation also detailed what happens to a patient's donated sample once it arrives at the biorepository. Different sample types are processed in different ways to maximize their versality for use in approved research studies. For example, archival tumor tissue may be preserved as formalin-fixed, paraffin-embedded (FFPE) blocks or hematoxylin and eosin (H&E) pathology slides, blood can be separated into different components or processed into DNA or RNA, and cheek swabs can be processed into DNA. Fresh tumor tissue from surgeries and biopsies is especially valuable because it can also be used to develop important preclinical models, like patient-derived xenografts (patient tumor tissue grown in mice), that are critically needed for rare melanoma research. The biorepository uses a laboratory information management system (LIMS) to track each de-identified sample (removing all identifiable patient information from the sample) from receipt through processing, storage, and future distribution to approved researchers. How are donated tissue samples used for research? Once samples have been processed, qualified researchers can request access to them for melanoma research studies. Each request is reviewed by a Tissue Use Disbursement Committee to ensure the requested samples and proposed research are meritorious and make appropriate use of these valuable patient-donated samples. Once approved and other institutional and material-transfer processes have occurred, researchers are then able to receive the de-identified samples and associated clinical data. By providing researchers with access to high-quality patient tissue samples, the MRA Melanoma Biorepository helps to accelerate scientific collaborations and advance research for melanoma, especially the rare melanoma subtypes. MRA is grateful to Dr. Couts for her leadership in establishing the Melanoma Biorepository and for her outstanding presentation at the AACR Special Conference on Breaking Barriers in the Fight Against Rare Cancers. Interested in getting involved? For patients interested in donating tissue, contact [email protected] to learn more about the MRA Melanoma Biorepository and to receive a consent form. For providers, hospitals, and clinics interested in partnering with the MRA Melanoma Biorepository, contact [email protected].
Tract Bio announces presentations at two AACR conferences. Jul 21, 2026, 13:00 ET Upcoming poster presentation at AACR D3 features data supporting TP101 as a therapeutic strategy to target drug-resistant cancer stem cells Presented poster at AACR Special Conference on Breaking Barriers in the Fight Against Rare Cancers demonstrates the potential of functional screening to identify synthetic lethal combinations against drug-resistant populations in ovarian cancer BOSTON, July 21, 2026 /PRNewswire/ - Tract Bio ("Tract"), a biotechnology company discovering and developing novel therapies for cancer and inflammatory disease, today announced presentations at the American Association for Cancer Research Drug Discovery and Development (AACR D3) conference and the AACR Special Conference on Breaking Barriers in the Fight Against Rare Cancers. Tract is advancing complementary approaches aimed at the drug-resistant cancer stem cells (CSCs) that survive treatment and drive disease progression. The stemECHO(TM) platform selectively clones CSCs while preserving genomic and epigenomic fidelity, enabling functional screening to identify the drugs that eliminate them in an individual patient; TP101 is a small molecule therapeutic candidate that has been tested against these cells directly. "Cancer stem cells drive tumor progression and therapeutic resistance yet have been difficult to eliminate selectively. Our functional precision medicine approach has the potential to find these cells and the drugs that eliminate them in an individual patient with ovarian cancer, and TP101 demonstrates how we can develop therapeutics against them directly while preserving normal stem cells," said Dr. Frank McKeon, Chief Scientific Officer and Co-Founder of Tract Bio. "We are encouraged by the TP101 data which we believe support its potential as a new treatment approach for Barrett's esophagus, esophageal adenocarcinoma, and high-grade epithelial malignancies, and we are continuing to advance toward an IND submission." AACR Drug Discovery and Development (AACR D3): July 21-24, 2026; Boston, MA The poster presentation highlights TP101, a first-in-class small molecule therapeutic that combines a proprietary bivalent IAP antagonist and the tyroskine kinase inhibitor ponatinib to selectively eliminate CSCs across epithelial solid tumors while sparing healthy epithelial stem cells. The dual small molecule combination killed CSCs in vitro with low nanomolar potency, robust caspase 3 activation, and marked sparing of normal esophageal stem cells in Barrett's esophagus and esophageal adenocarcinoma (EAC). In mouse xenografts, TP101 drove near-complete tumor regression of EAC and depletion of tumor-associated fibroblasts. Together, these data support TP101 as a therapeutic strategy to potently and selectively eliminate malignant stem cells while targeting tumor supportive stroma and broadening the therapeutic window. Presentation details are as follows: * Title: TP101: First-in-class cancer stem cell-targeted small molecule combination therapy for epithelial malignancies * Presenters: Cody C. McHale, Ph.D., Chief Operating Officer of Tract Bio; Souneek Chakraborty, Ph.D., Principal Scientist, Biology of Tract Bio * Session Date and Time: Poster #A078, Session A - Wednesday, July 22, 2026, 6:15-8:45 p.m. ET * Venue: Sheraton Boston Hotel, Back Bay Ballroom AACR Special Conference on Breaking Barriers in the Fight Against Rare Cancers: July 18-20, 2026; Vancouver, British Columbia The second poster highlights a functional precision medicine approach in high-grade serous ovarian cancer, leveraging the Company's stemECHO(TM) platform to clone cancer stem cells from individual patient specimens. Tract researchers identified a polyresistant population in every case examined, then screened those cells against hundreds of approved and investigational drugs to find combinations that eliminated them at low nanomolar concentrations in vitro and showed activity in xenograft models derived from the polyresistant clones. This approach has the potential to deliver patient-specific drug sensitivity profiles to a multidisciplinary Functional Precision Medicine Tumor Board within 14 to 28 days of biopsy receipt. * Title: Functional precision medicine targeting polyresistant cancer stem cells in high-grade serous ovarian cancer * Presenters: Wa Xian, Ph.D., Chief Scientific Officer and Co-Founder of Tract Bio; Yen-hsiang "Johnson" Huang, Senior Bioinformatics Scientist of Tract Bio * Session Date and Time: Poster #A030, Session A - Saturday, July 18, 2026, 7:30-9:30 p.m. PDT * Venue: JW Marriott Parq Vancouver Hotel, Vancouver, BC, Canada About Tract Bio Tract Bio is a biotechnology company discovering and developing novel therapies to transform the treatment of cancer and inflammatory disease. The Company's proprietary line of FAP-activated peptide drug conjugates (PDCs) uses advanced targeting technology to potentially enhance the safety and efficacy of cancer therapeutics. Tract is leveraging both its FAP PDC platform and its breakthrough stem cell discovery platform, stemECHO(TM), to transform the treatment of cancer and inflammatory diseases. stemECHO(TM) allows for reliable, high-volume generation of pure stem cell libraries in their ground-state while preserving the functional, genetic and epigenetic integrity of the original stem cell. Tract Bio is advancing TP-101, a first-in-class drug combination identified using stemECHO(TM) that is designed to potently and selectively eliminate cancer stem cells while sparing normal stem cells. SOURCE Tract Bio