DiPersio to become president of transplantation society

John DiPersio, MD, PhD

John DiPersio, MD, PhD, director of the Division of Oncology and deputy director of Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine in St. Louis, has been elected to the top leadership post in the American Society for Blood and Marrow Transplantation (ASBMT). He will take over the role during the society’s meetings in Salt Lake City in February. 

DiPersio, the Virginia E. and Sam J. Golman Professor of Medicine in Oncology at the School of Medicine, has served on the ASBMT board of directors for several years.

His clinical research focuses on fundamental and translational aspects of leukemia and stem cell biology. Among his many accomplishments, DiPersio was instrumental in developing a drug called plerixafor that was approved by the Food and Drug Administration in 2008 to help treat multiple myeloma and non-Hodgkin’s lymphoma.

DiPersio also is chair of the American Society of Hematology Scientific Committee on Hematopoiesis and a member of the Board of Scientific Counselors (Clinical Science and Epidemiology) for the National Cancer Institute.

Initiative to help cancer patients quit smoking

Smoking rates in the United States have decreased dramatically in recent decades, but many smokers diagnosed with cancer continue to light up. To make smoking cessation a major focus at cancer centers, including Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine in St. Louis, the National Cancer Institute (NCI) of the National Institutes of Health (NIH) is funding the Cancer Center Cessation Initiative.

Compared with a national smoking rate of about 15 percent, the rate is 16 percent in Illinois and 22 percent in Missouri.

“But among the patients at Siteman, the smoking rate is 23 percent,” said Li-Shiun Chen, MD, an associate professor of psychiatry at the School of Medicine. “The idea of this project is to treat not only cancer — which often is a consequence of smoking — but also to help smokers quit to improve survival and help prevent future cancers.”

The project at the Siteman — supported with a $480,000 grant — is one of 22 funded by the NCI’s Cancer Moonshot initiative.

Some cancer patients may think the damage already is done, or they may feel overwhelmed with their diagnoses and the treatments they receive.

Chen, a nicotine-addiction specialist, said continuing to smoke following a cancer diagnosis can interfere with treatment and make a patient’s prognosis worse. Quitting, meanwhile, can improve patients’ symptoms and their ability to recover more quickly from treatment, improving their long-term outcomes.

“Under this new program, when patients see oncologists or surgeons, they will get advice about quitting, referrals to telephone quit lines or to Smokefree.gov, an NCI program that involves text messages and a smoking-cessation app,” Chen said. “They also will have the opportunity to receive prescriptions for medications to help them quit.”

Smoking contributes to about 30 percent of all cancer deaths. And under the new program, Chen said people who receive care at Siteman, including those who come for cancer screenings, will be asked if they smoke and have the opportunity to receive counseling or medication.

“Our goal is to eliminate tobacco, and we want to help even our sickest cancer patients take that step,” Chen said.

Study prompts new ideas on cancers’ origins

Rapidly dividing, yet aberrant stem cells are a major source of cancer. But a new study suggests that mature cells also play a key role in initiating cancer — a finding that could upend the way scientists think about the origins of the disease.

Researchers at Washington University School of Medicine in St. Louis have found that mature cells have the ability to revert back to behaving more like rapidly dividing stem cells. However, when old cells return to a stem cell-like status, they can carry with them all of the mutations that have accumulated to date, predisposing some of those cells to developing into precancerous lesions.

The new study is published online in the journal Gastroenterology.

“As scientists, we have focused a good deal of attention on understanding the role of stem cells in the development of cancers, but there hasn’t been a focus on mature cells,” said senior investigator Jason C. Mills, MD, PhD, a professor of medicine in the Division of Gastroenterology. “But it appears when mature cells return back into a rapidly dividing stem cell state, this creates problems that can lead to cancer.”

The findings, in mice and in human stomach cells, also raise questions about how cancer cells may evade treatment.

Most cancer therapies are aimed at halting cancer growth by stopping cells from rapidly dividing. Such treatments typically attack stem cells but would not necessarily prevent mature cells from reverting to stem cell-like status.

“Cancer therapies target stem cells because they divide a lot, but if mature cells are being recruited to treat injuries, then those therapies won’t touch the real problem,” said first author Megan Radyk, a graduate student in Mills’ laboratory. “If cancer recurs, it may be because the therapy didn’t hit key mature cells that take on stem cell-like behavior. That can lead to the development of precancerous lesions and, potentially, cancer.”

Studying mice with injuries to the lining of the stomach, the researchers blocked the animals’ ability to call on stem cells for help in the stomach. They focused on the stomach both because Mills is co-director of Washington University’s NIH-supported Digestive Disease Center and because the anatomy in the stomach makes it easier to distinguish stem cells from mature cells that perform specific tasks. Even without stem cells, the mice developed a precancerous condition because mature stomach cells reverted back to a stem cell state to heal the injury.

Analyzing tissue specimens from 10 people with stomach cancer, the researchers found evidence that those same mature cells in the stomach also had reverted to a stem cell-like state and had begun to change and divide rapidly.

The Mills lab is working now to identify drugs that may block the precancerous condition by preventing mature cells from proliferating and dividing.

“Knowing these cells are leading to increased cancer risk may allow us to find drugs to keep mature cells from starting to divide and multiply,” Mills said. “That may be important in preventing cancer not only in the stomach and GI tract but throughout the body.”

Medical School faculty named to National Academy of Inventors

Noted innovators Samuel Achilefu, PhD, David Holtzman, MD, and Eric Leuthardt, MD – faculty members at Washington University School of Medicine in St. Louis – have been named fellows of the National Academy of Inventors (NAI). The 2017 class of NAI fellows was announced Tuesday.

They are recognized as fellows for demonstrating innovation in creating and facilitating outstanding inventions that have made a tangible impact on quality of life, economic development and the welfare of society.

The newest class of fellows – 155 scientists from universities and governmental and nonprofit institutions – will be honored April 5 at a ceremony in Boston.

Other NAI fellows at Washington University include Chancellor Mark S. Wrighton; Holden Thorp, provost and executive vice chancellor for academic affairs; and Jennifer K. Lodge, PhD, vice chancellor for research.

Samuel Achilefu

Achilefu, the Michel M. Ter-Pogossian Professor of Radiology, is being recognized for his innovative approach to integrating engineering, biology and medicine. He is known for pioneering the development of strategies for molecular imaging and treatment of human diseases using novel molecular probes and light-sensitive drugs. Also a professor of biochemistry and molecular biophysics, and of biomedical engineering, he discovered a new molecular entity that can be used to deliver drugs to many types of tumors.

Achilefu also led a team that developed a wearable, goggle-based imaging system for guiding surgical removal of cancer in real time. Cancer cells are notoriously difficult to see, even under high-powered magnification. Achilefu’s eyewear is designed to make it easier for surgeons to distinguish malignant cells from healthy cells, helping to ensure that no stray tumor cells are left behind during surgery to remove a cancerous tumor. The glasses could reduce the need for additional surgical procedures and the subsequent stress on patients, as well as time and expense.

After receiving a PhD in chemistry at the University of Nancy, France, and postdoctoral training in blood oxygen transport mechanisms, Achilefu came to St. Louis in 1993 to join the nascent Discovery Research Department at Mallinckrodt Medical Inc. In 2001, he joined Mallinckrodt Institute of Radiology at Washington University, where he now heads the Optical Radiology Laboratory. A Siteman Cancer Center researcher, he is also director of the university’s Molecular Imaging Center and a co-director of the Center for Multiple Myeloma Nanotherapy.

He is the recipient of numerous awards, including the prestigious St. Louis Award, given to St. Louis-area residents whose achievements reflect positively on the community. He also has been issued more than 50 U.S. patents.

David M. Holtzman

Holtzman, the Andrew B. and Gretchen P. Jones Professor and head of the Department of Neurology, is being honored for distinguished contributions to understanding the pathogenesis of Alzheimer’s disease and for developing diagnostics and treatments for the disease.

His research has focused on how levels of the Alzheimer’s proteins amyloid beta and tau in the brain and spinal fluid are linked to risk for and progression of the disease. He helped develop a technique known as stable isotope-linked kinetics (SILK) for monitoring production and clearance of amyloid beta in the brain and spinal fluid. The technique involves giving people a slightly altered form of one of the amino acids the body uses to make proteins. Through monitoring the presence of proteins with the altered amino acid, scientists can track how quickly the proteins are produced and cleared from the brain. The technique also can be adapted to study other diseases and biological processes.

His laboratory also developed antibodies against amyloid beta and tau that are currently in clinical trials in people with very early stages of Alzheimer’s disease. Holtzman co-founded a company called C2N Diagnostics in 2007 with Randall Bateman, MD, the Charles F. and Joanne Knight Distinguished Professor of Neurology, to develop biomarkers for neurodegenerative diseases.

Holtzman earned his bachelor’s and medical degrees from Northwestern University. He completed an internship, residency and postdoctoral fellowship at the University of California, San Francisco, where he was an assistant professor of neurology from 1991-94 before joining the Washington University faculty.

Past honors include the MetLife Foundation award for research on Alzheimer’s disease, the Potamkin Prize for Alzheimer’s research from the American Academy of Neurology, the 2014 Chancellor’s Award for Innovation and Entrepreneurship at Washington University, and election to the National Academy of Medicine of the National Academy of Sciences. He also is a fellow of the American Association for the Advancement of Science.

Eric Leuthardt

Leuthardt, a professor of neurosurgery, of neuroscience, of biomedical engineering, and of mechanical engineering and applied science, is an expert in brain mapping and in devices that link the brain with computers. He studies how the brain encodes information so researchers can develop electronic devices controlled by the mind. Such brain-computer interfaces could allow patients to use their thoughts to communicate, move artificial or paralyzed limbs, or perform other neurological functions.

As director of Washington University’s Center for Innovation in Neuroscience and Technology, he gathers neurosurgeons, engineers, mathematicians, physicists and computer scientists to collaborate and develop new technologies to improve neurosurgery. He has helped develop techniques to identify the location of brain functions such as language and motor function to minimize the chance that surgery will impair crucial abilities.

With more than 500 issued patents and six startup companies for medical devices and brain-computer interface technologies, Leuthardt is a prolific inventor. He was named a Top Young Innovator by the Massachusetts Institute of Technology’s magazine Technology Review in 2004, and won the Academy Award of the American Academy of Neurological Surgery that same year. He also received the Innovation Award from the Academy of Science in St. Louis and was honored with the Chancellor’s Award for Innovation and Entrepreneurship at Washington University.

A native of Cincinnati, Leuthardt earned his bachelor’s degree in biology and theology at Saint Louis University and his medical degree from the University of Pennsylvania School of Medicine before returning to St. Louis to do his residency in neurological surgery at Barnes-Jewish Hospital and the School of Medicine. He joined the School of Medicine faculty in 2006.

Undaunted explorer

Timothy Ley, MD, the Lewis T. and Rosalind B. Apple ­Professor of Medicine, has been investigating leukemia, particularly acute myeloid leukemia (AML), for decades. A glimpse of his research over just the past 10 to 15 years — featured in ­journals like NatureCell, the New England ­Journal of Medicine and ­Journal of the American Medical Association — illustrates how challenging the journey has been, yet it also showcases the resolve that he and his ­colleagues continue to display in their quest for answers and ultimately cures for this terrible disease.

After the human genome was sequenced in 2003 (after nearly 13 years of research and more than $2 billion in ­funding), Ley ­proposed an audacious plan to find all the ­mutations ­associated with AML, which is a heterogeneous set of diseases with many ­subtypes. He approached Rick Wilson, then ­director of the ­university’s Genome ­Sequencing Center (now the ­McDonnell Genome Institute­), with the idea, and they both knew it would be too daunting and too expensive to do at the time.

Yet they prepared for a day when the cost of sequencing would go down and speed would go up. Banking the right samples from people with AML, and tracking their disease to identify all the laboratory and clinical features, Ley and John DiPersio, MD, PhD, the Virginia E. & Sam J. Golman Professor of Medicine and chief of the Division of Oncology, and their colleagues laid the groundwork for research to come. In 2007, a technical breakthrough — next-generation ­sequencing — dropped the cost of sequencing a genome by nearly ­1,000-fold and allowed them to proceed.

Cobbling together funding from various sources, the team from the Genome Sequencing Center and the oncology division ­began the initial sequencing work. But funding ran short, and none of the usual sources were willing to pitch in at the time. The work was new, unproven, expensive and risky. Soon thereafter, however, they received a visionary gift from Alvin Siteman to conduct whole genome sequencing on two patients with AML; these were the first cancer genomes to be sequenced in the world. The aim was to begin to define AML-specific mutations that could identify who would do poorly and who would do well after therapy. Each AML sample had about 1,000 mutations, but only 10 to 15 were in genes. This work catapulted their efforts into the national spotlight and was featured on the front page of The New York Times.

These findings created a blueprint for cancer genome ­sequencing and allowed the team to acquire major long-term funding from the National Cancer Institute. The WashU team then collaborated with The Cancer Genome Atlas to sequence hundreds of AML cases. This work led to the discovery of nearly all the genes mutated in AML patients and provided the foundation for a new understanding of the disease.

“The grand idea was that by retrospectively ­analyzing banked samples (from patients whose outcomes were known), we would be able to recognize ­mutations that would better predict who was going to do well and who wasn’t. We could then reclassify our patients and tailor therapy for each person. But it didn’t work out that way,” says Ley, associate director of the ­McDonnell Genome ­Institute. “It turned out to be far more complicated than it had looked to be on first blush.”

Their early studies of AML, however, led to an important understanding of the problem: clonal heterogeneity, which, ­according to Ley, is now at the center of all cancer genomics.

In short, when cancer cells are placed under therapeutic ­bottlenecks — when treated with drugs that try to kill them — some will adapt in response, “kind of like Roundup-resistant weeds in soybean fields,” while others will be resistant up-front.

“AML tumors turned out to be clonally complex even before therapy, which was a great surprise to us,” Ley says. “Every AML has a founding clone and also unique subclones (each with a unique set of mutations). It turned out that our existing therapies often eliminate only some AML subclones in a particular patient, and the resistant ones rise again to cause a relapse.”

This finding has been extrapolated to most other ­cancer types in adults and represents one of the greatest ­challenges in cancer therapeutics. “Regardless of how difficult this problem is, it is important that we discovered the truth about it,” Ley says.

Thinking about how to clinically address the clonal ­heterogeneity problem, the team used each ­patient’s own AML cells to assess how different subclones respond to initial therapy. They sequenced AML samples from patients at presentation and then again after their initial therapy to see whether the ­mutations were cleared by the treatment. Surprisingly, about half of the patients — who were thought to be in remission ­using standard methods — had not cleared all of their mutations, and they relapsed a year earlier than the ­patients who did clear all ­measurable disease. This study has moved forward to a prospective trial to determine whether serial ­sequencing can help assign risk and help clinicians pick the least toxic and most effective therapy for each intermediate-risk AML patient who seeks ­treatment at Siteman Cancer Center.

The same serial-sequencing approach was also recently used by the group to define which patients were responding to a less toxic form of therapy with a drug called decitabine, which is often used in older AML patients who cannot tolerate the ­aggressive therapies used in younger, more fit patients. This study provided yet another surprise: Patients with the most ­lethal form of AML, harboring mutations in a gene called TP53, all responded favorably to this milder form of therapy. Again, these results have led to the development of new clinical trials using this therapy earlier for patients with this mutation, which truly represents the central goal of precision medicine: ­matching the mutation to the right drug.


In the 60 percent of AML patients who have an ­intermediate risk of relapse, some respond well to conventional treatments, while others do very poorly. “When we started these ­studies, the mutations associated with this kind of AML were not ­understood. These patients represented the ­biggest therapeutic conundrum in the field,” Ley says. After years of ­research, Ley and his team now understand the initiating events for most of these cases, including the 35 percent who have mutations in the gene DNMT3A, which was discovered in the first AML genome the team sequenced. “The discovery of the major initiating ­mutations for this kind of AML was crucial,” Ley says, “because it has ­allowed us to begin to think about new approaches to target these ­mutations.”

Currently, the only AML-initiating mutation that can be ­targeted specifically is a fusion gene that causes one subtype of AML, called acute promyelocytic leukemia (APL), which ­comprises about 10 percent of cases. APL patients are now ­routinely treated with drugs that destroy the protein that initiates the ­disease — without traditional chemotherapy — and nearly 95 ­percent are cured. “This is the poster child for what we want to do for all AML cases: find drugs that eradicate cells harboring the ­initiating mutations. And now that we know what these ­mutations are for nearly all patients, we have new hope that we’ll find novel ways to target them,” Ley says.

Ley admits that his team still has a lot of work to do, but they at least know the face of the enemy. “We don’t have everything solved,” he says, “but we now have a sound understanding of the problem: the mutations that we need to go after ­aggressively, the ones we can go after less aggressively, the nature of the ­mutations that need to be targeted and why patients relapse.”

[Note: According to Timothy Ley, this ongoing work has been a team effort. In the Division of Oncology, in addition to Ley and John DiPersio, key members of the team have included the following: Daniel Link, MD, the Alan A. & Edith L. Wolff Professor of Medicine; Timothy Graubert, MD; Matthew Walter, MD, professor medicine; Michael Tomasson, MD; John Welch, MD, assistant professor of medicine; Lukas Wartman, MD, assistant professor of medicine; Peter Westervelt, MD, professor of medicine; Jeffrey Klco, MD, PhD; David Spencer, MD, assistant professor of medicine; Matthew Christopher, MD; Michael Rettig, MD, associate professor of medicine; Eric Duncavage, MD, associate professor of pathology & immunology; Jacqueline Payton, MD, assistant professor of pathology & immunology; Mark Watson, MD, associate professor of pathology & immunology; Sharon Heath and Jack Baty. At the McDonnell Genome Institute, key contributors have included Richard Wilson, PhD; Elaine Mardis, PhD; Li Ding, PhD; Chris Miller, PhD; Malachi Griffith, PhD; Obi Griffith, PhD; Allegra Petti, PhD; David Larson, PhD; Michelle O’Laughlin, Catrina Fronick, Bob Fulton and Lucinda Fulton. Numerous others have also made important contributions to this body of work. Finally, none of the work could have been done without the willing participation of the patients and families who participated, who are also team members in the truest sense of the word.]

How cells detect, mend DNA damage may improve chemotherapy

The busy world inside a cell is directed by its DNA blueprint. When the blueprints are altered, cells can sicken, die or become cancerous. To keep DNA in working order, cells have ways to detect and mend damaged DNA.

Now, researchers at Washington University School of Medicine in St. Louis report that they have found a previously unknown way that cells sense a kind of damage induced by certain chemotherapy drugs. The findings, published Nov. 8 in the journal Nature, could have important implications for treating cancer.

Some of the oldest chemotherapy drugs are known as alkylating agents because they kill cancer cells by adding groups of carbon and hydrogen atoms to – or alkylating – DNA. The extent of the alkylation damage overwhelms the cells’ ability to heal themselves via their DNA repair pathways. And some tumors are abnormally dependent on proteins involved in DNA repair, such that knocking out those proteins kills the tumor cells.

“We found that human cells can sense alkylation damage and mobilize a repair complex specifically suited to repair this kind of injury,” said senior author Nima Mosammaparast, MD, PhD, an assistant professor of pathology and immunology, and co-leader of the DNA Metabolism and Repair Working Group at Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine. “Knocking out this complex may be a way to increase the potency of certain chemotherapy drugs, or to specifically target tumor cells that have become dependent on the repair complex.”

Alkylation can happen naturally, which is why cells have this repair system in the first place. Also, certain chemotherapy drugs force it to happen. Busulfan, used to treat leukemia, and temozolomide, prescribed for brain tumors, alkylate many spots along DNA. It is difficult for the genetic blueprint to be copied accurately where DNA has been alkylated, so such alkylation damage kills the cells.

Studying cells treated with alkylating chemotherapy drugs or with drugs that lead to other kinds of DNA damage, the researchers determined how cells try to mend DNA damage caused specifically by alkylating agents. They identified a group of proteins that clustered near the spots on the DNA that had been alkylated. Cells that lacked a key member of this protein complex were more likely to die if they were treated with alkylating drugs than cells that had the protein, indicating the importance of the protein complex in repairing DNA. Lacking the key protein made no difference when the DNA was damaged in other ways.

These findings suggest that sensing alkylation damage is a major primary defense against chemotherapy drugs such as busulfan and other alkylating agents. Interfering with this repair complex could amplify the killing power of such drugs and potentially even avert or undermine drug resistance. After a successful course of chemotherapy, tumors sometimes recur tougher than before, having become resistant to the drugs from the first round of treatment.

“There’s some evidence now that overexpressing components of this signaling pathway may be how some tumors become resistant to chemotherapy,” Mosammaparast said. “Blocking this pathway could be a way to make resistant tumors sensitive again.”

Recurrent tumors are not the only ones that may have high levels of DNA repair proteins. Some tumors that have never encountered alkylating chemotherapy drugs have high levels of key alkylation-repair proteins. And when they do, it portends poorly for the patients.

“In some kinds of pancreatic, prostate and lung cancer, overexpressing components of this pathway indicates a significantly worse prognosis,” Mosammaparast said.

There is a possible silver lining, though. Tumors that have high levels of key alkylation repair proteins are often dependent on them, meaning that if those proteins were somehow inhibited, the cells would die.  Normal cells are not dependent on this alkylation repair pathway to the same degree. Other repair systems can handle the level of alkylating DNA damage typically encountered by a healthy cell.

“That could be an opening for a chemotherapy drug,” Mosammaparast said. “We may be able to design a drug that is toxic to tumors but not to normal cells by targeting this alkylation repair pathway.”

The drug olaparib, approved in 2014 to treat hereditary ovarian cancer, exploits a similar vulnerability. It targets tumors that are unusually dependent on a repair pathway that stitches DNA back together after it has been cut into pieces. Olaparib blocks that pathway, and without it, the cancerous cells die.

$6 million supports leukemia research

John F. DiPersio, MD, PhD, of Washington University School of Medicine in St. Louis, has received a $6 million outstanding investigator award from the National Cancer Institute (NCI) of the National Institutes of Health (NIH) to support research aimed at improving therapies for leukemia.

DiPersio, the Virginia E. and Sam J. Golman Professor of Medicine in Oncology, is also deputy director of Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine. He is a leading expert in understanding and treating leukemia, a cancer of the blood-forming cells in the bone marrow. Along with chemotherapy, the standard of care for leukemia is a stem cell transplant, commonly referred to as a bone marrow transplant.

“One of our major goals is to optimize stem cell transplantation — both in making the process of donating stem cells faster and more efficient and in finding ways to control the potentially damaging side effects of the transplant,” DiPersio said. “A stem cell transplant is often the only curative therapy for these types of blood cancers. But the transplant itself can be life-threatening if the donor’s stem cells begin to attack the patient’s vital organs. If we can control and prevent these side effects, it could have a significant impact on patients.”

The NCI’s outstanding investigator award recognizes physician-scientists who have a long history of successful research and are deemed likely to make major gains in the cancer field with the support of continuous funding for seven years.

The grant will support three major areas of research in DiPersio’s lab. One area is focused on improving the effectiveness of standard chemotherapy and in making stem cell donation faster and more efficient. DiPersio and Michael P. Rettig, PhD, an associate professor of medicine, are seeking better ways to force cancerous cells that hide in the bone marrow to move into the bloodstream, where they are more vulnerable to chemotherapy. In addition, boosting this movement of blood stem cells also helps speed the process of harvesting healthy stem cells from a donor, for use in a stem cell transplant. Today, that process can take up to two weeks. DiPersio said he and his colleagues are testing strategies that have the potential to reduce the time to minutes or hours.

A second area of focus for DiPersio’s lab is to prevent graft-versus-host disease, a major and sometimes life-threatening complication of bone marrow transplantation. Graft-versus-host disease occurs when the donor immune cells that kill cancer begin inadvertently to attack a patient’s organs. Researchers in DiPersio’s lab, led by Jaebok Choi, PhD, an assistant professor of medicine, are investigating a class of drugs called JAK inhibitors — approved by the Food and Drug Administration to treat rheumatoid arthritis. These drugs have been shown in animal models and in small clinical trials to reduce graft-versus-host disease while maintaining the anti-cancerous effect against the leukemia.

A third area of focus is to develop new immunotherapies to treat acute myeloid leukemia (AML), T-cell acute lymphoblastic leukemia (T-ALL) and T-cell non-Hodgkin lymphoma (T-NHL). The grant will support developing antibodies and engineered T cells, called CAR-T cells, capable of targeting multiple proteins on AML, T-ALL and T- NHL. Also, to pursue targeted therapies for T-ALL, the grant will support the use of CRISPR gene-editing technology to design T-cells that can attack cancer without harming healthy cells.

“Tumor cells make proteins that distinguish these cells from healthy cells,” DiPersio said. “We can now genetically program immune cells to target these proteins, taking what an immune cell does normally, every day, to protect us from infection and directing it at a specific type of cancerous cell. It’s a bit like giving a dog a scent. You’re telling the immune cells what to look for, sensitizing them to the target.”

In this approach, the gene-editing technology also is used to remove the cellular machinery that triggers graft-versus-host disease while still allowing these genetically edited CAR-T cells to track down and kill the T-ALL cells. Using this approach, the DiPersio lab will be able to use T-cells obtained from any donor without relying on the patient’s own T cells, which are “sick” and hard to separate from the patient’s malignant T-ALL, among other challenges.

DiPersio’s novel approach has been dubbed “off-the-shelf” CAR-T cell therapy because the T-cells could be donated by anyone and prepared ahead of time. This is in contrast to a traditional stem cell transplant, in which the potential donors are restricted to a patient’s close relatives or a person with similar immune characteristics. Efforts in this third research area are led by Matthew L. Cooper, PhD, an instructor in medicine.

In addition to his research program, DiPersio also directs the Division of Oncology at the School of Medicine and was the founding director of the adult bone marrow and stem cell transplant program, which he led for many years. One of the largest such programs worldwide, it currently is led by Peter Westervelt, MD, PhD, a professor of medicine. The program performs almost 500 transplants per year and recently performed its 7,500th transplant.

Maher recognized by Lung Cancer Research Foundation

Christopher A. Maher, PhD, an assistant professor of medicine at Washington University School of Medicine and a Siteman Cancer Center research member, has received the William C. Rippe Award for Distinguished Research in Lung Cancer.

Given by the Lung Cancer Research Foundation, the annual award goes to an “investigator whose proposal not only demonstrates exceptional scientific merit but also exemplifies an enduring commitment to making an impact in the field of lung cancer research.” The award comes with $150,000 in funding.

Maher, who also is an assistant director at the McDonnell Genome Institute, received the grant for his research project, “Understanding the regulatory roles of long non-coding RNAs in lung cancer.”

His research focuses on better understanding how cancerous tumors metastasize to other parts of the body. Specifically, he’s studying how the role that long non-coding RNA (lncRNA) transcripts play in cancer cells. Maher’s lab has observed differences between the long non-coding RNA transcripts of lung cancer tumors and non-cancerous lung tissue, and researchers there are testing the hypothesis that long non-coding RNA transcripts regulate genes that promote cancer. The funding Maher received for his research will help lead to the development of better and more specific clinical treatments for cancer.

For more information about Maher’s research, visit www.maherlab.com.

New gene-altering treatment offered for blood cancers

Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine in St. Louis is one of the first centers nationwide to offer a new immunotherapy that targets certain blood cancers. Newly approved by the Food and Drug Administration (FDA) for types of advanced non-Hodgkin lymphoma in adults, the CAR-T cell therapy harnesses a patient’s own immune system to fight cancer.

Washington University doctors and researchers were involved in clinical trials that led to the FDA approval of the new CAR-T cell therapy, called Yescarta, and are working to develop other immunotherapies that attack cancer.

“This is the beginning of a new era of cancer therapy,” said Washington University oncologist Armin Ghobadi, MD, an assistant professor of medicine at the School of Medicine who treats patients at Siteman. “With CAR-T cell therapy, we can take patients’ own cells and turn them into a powerful weapon to attack cancer. It’s a highly personalized, innovative therapy and one we hope also will prove to be effective against many different types of cancer.”

At the heart of the new therapy are the immune system’s T cells, which typically fight off disease. In cancer patients, T cells lose the ability to recognize and attack cancer cells. CAR-T cell therapy involves extracting a patient’s own T cells and genetically altering – or supercharging – those cells to home in on cancer cells and destroy them.

The first cancers to be treated with CAR-T cell therapy include advanced lymphomas in adults and acute lymphoblastic leukemia (ALL) in children. CAR-T cell therapy for pediatric ALL was approved by the FDA at the end of August and is available through Siteman Kids at St. Louis Children’s Hospital. These cancers are characterized by the production of too many B cells, a type of white blood cell that is also a part of the immune system.

Currently, CAR-T therapy for adults with non-Hodgkin lymphoma is available only to patients whose cancer has not responded to standard treatments — including chemotherapy and bone marrow transplantation. Kite Pharma, a Gilead company, developed the new treatment.

Clinical trials of CAR-T therapy have shown what doctors have called remarkable remission rates among children with ALL and adults with lymphomas and multiple myeloma. In patients whose disease has not responded to standard therapies or has relapsed, CAR-T therapy has achieved from 40 to 80 percent remission rates. Some patients have remained in remission for several years.

“The availability of this new treatment offers a novel and very effective option for patients whose choices were once limited to joining a clinical trial of an investigational drug or entering hospice care,” Ghobadi said.


These modified T cells have been dubbed CAR-T cells, which stands for chimeric antigen receptor T cells.
A patient’s T cells are isolated from the blood and modified in a way that lets the T cells specifically home in on the type of cell affected by the cancer. These modified T cells have been dubbed CAR-T cells, which stands for chimeric antigen receptor T cells. Once a CAR-T cell finds its target, it behaves as any T cell should — triggering a chain of reactions that destroys the target cell. HUY MACH



If cancerous cells find ways to fly under the radar of immune surveillance, the new therapy renders these cancers visible again.

“The immune system can’t always see cancer cells as threats — the T cells are sometimes blind to them,” said John F. DiPersio, MD, PhD, the Virginia E. and Sam J. Golman Professor of Medicine in Oncology and director of the Division of Oncology at the School of Medicine and deputy director of Siteman Cancer Center. “By modifying these T cells, we tell them what to look for. Now they can go right to the leukemia or lymphoma and eliminate the cancerous cells.”

Over decades, an extensive body of research gradually has revealed the details of what many types of cancers look like on the cell surface. And in this new therapy, that information is, in a sense, programmed into the T cell. A patient’s T cells are isolated from the blood and modified in a way that lets the T cells specifically home in on the type of cell affected by the cancer. These modified T cells have been dubbed CAR-T cells, which stands for chimeric antigen receptor T cells.

Once a CAR-T cell finds its target, it behaves as any T cell should — triggering a chain of reactions that destroys the target cell. CAR-T cells often are referred to as a living drug because they expand their numbers dramatically once in the bloodstream. And like other T cells, they remember what their targets look like, sometimes long after the offending cells have been eradicated. While long-term data is still being gathered, there is evidence that some CAR-T cells may maintain their active surveillance and ramp up again in response to cancer recurrence. The fact that CAR-T cells can be given different programming, locking them on to different cell surface features, suggests the strategy could be expanded to other cancers.

But because the therapy induces a heightened immune response, there can be a range of side effects, from fever and shortness of breath to kidney failure and seizures. Many of the side effects are manageable, but some are severe and a few can be life-threatening, which is why the first centers selected to administer the new therapy are those with extensive expertise in treating blood cancers. That expertise includes long histories of success in bone marrow transplantation and management of the sometimes severe side effects of that similarly intensive, but standard, therapy for many blood cancers.

“The toxicities of bone marrow transplantation and CAR-T cells are completely different, but we are well-equipped to manage both,” DiPersio said. “We have approved therapies we can give to counter one of the primary side effects of CAR-T cells called cytokine release syndrome, which causes symptoms like low blood pressure, high fevers, chills, swelling and kidney failure. Some patients who receive CAR-T therapies also can experience life-threatening neurologic toxicities that we are still working to understand.”

Washington University doctors at Siteman also are evaluating CAR-T cell therapy in a clinical trial for leukemia and soon will begin a trial in patients with multiple myeloma, another type of blood cancer, and ovarian cancer. Clinical trials currently available for sarcoma, a cancer of bones and connective tissue; lung cancer; and melanoma, a skin cancer, involve therapies very similar to CAR-T cell therapy.

For more information about CAR-T cell therapy, patients should visit siteman.wustl.edu or call toll free 800-600-3606.

Chemo-loaded nanoparticles target breast cancer that has spread to bone

Breast cancer that spreads often infiltrates bone, causing fractures and intense pain. In such cases, chemotherapy is ineffective because the environment of the bone protects the tumor, even as the drug has toxic side effects elsewhere in the body.

Now, scientists at Washington University School of Medicine in St. Louis have developed a nanoparticle that can deliver chemotherapy directly to tumor cells that have spread to bone. In mice implanted with human breast cancer and exposed to circulating cancer cells likely to take up residence in bone, the researchers showed the treatment kills tumor cells and reduces bone destruction while sparing healthy cells from side effects.

The study is available online in the journal Cancer Research.

“For women with breast cancer that has spread, 70 percent of those patients develop metastasis to the bone,” said senior author Katherine N. Weilbaecher, MD, a professor of medicine. “Bone metastases destroy the bone, causing fractures and pain. If the tumors reach the spine, it can cause paralysis. There is no cure once breast cancer reaches the bone, so there is a tremendous need to develop new therapies for these patients.”

In the study, the researchers showed that breast cancer cells that spread to bone carry molecules on their surface that are a bit like Velcro, helping tumor cells stick to the bone. These adhesion molecules also sit on the surface of cells responsible for bone remodeling, called osteoclasts.

“In healthy bones, osteoclasts chew away old, worn out bone, and osteoblasts come in and build new bone,” said Weilbaecher, who treats patients at Siteman Cancer Center at Barnes-Jewish Hospital and Washington University School of Medicine. “But in cancer that spreads to bone, tumors take over osteoclasts and essentially dig holes in the bone to make more room for the tumor to grow.”

Weilbaecher said she and her colleagues were surprised to find that the same adhesive molecule on the surface of osteoclasts also is present in high levels on the surface of the breast tumors that spread to bone. The research showed that the molecule — called integrin αvβ3 — was absent from the surfaces of the original breast tumor and from tumors that spread to other organs, including the liver and the lung. The researchers confirmed that this pattern also was true in biopsies of human breast tumors that had spread to different organs.

A collaboration with co-senior author Gregory M. Lanza, MD, PhD, a professor of medicine and of biomedical engineering, then led to the design of a nanoparticle that combines the bone-adhesion molecules with a form of the cancer drug docetaxel, which is used to treat breast cancer as well as other tumors. The adhesive molecules allow the nanoparticle to penetrate the otherwise protective environment of the bone matrix in a way that, in essence, mimics the spreading of the tumor cells themselves. The result is a delivery method that keeps the chemotherapy drug contained in the nanoparticle until the adhesion molecules make contact with the tumor cell, fusing the nanoparticle with the cell surface and releasing the drug directly into the cancer cell.

“When we gave these nanoparticles to mice that had metastases, the treatment dramatically reduced the bone tumors,” Weilbaecher said. “There was less bone destruction, fewer fractures, less tumor. The straight chemo didn’t work very well, even at much higher doses, and it caused problems with liver function and other toxic side effects, which is our experience with patients. But if we can deliver the chemo directly into the tumor cells with these nanoparticles that are using the same adhesive molecules that the cancer cell uses, then we are killing the tumor and sparing healthy cells.”