Showing posts with label tumor. Show all posts
Showing posts with label tumor. Show all posts

Tuesday, 31 May 2011

'I'm a tumor and I'm over here!' Nanovaults used to prod immune system to fight cancer

ScienceDaily (May 4, 2011) — UCLA scientists have discovered a way to wake up the immune system to fight cancer by delivering an immune system-stimulating protein in a nanoscale container called a vault directly into lung cancer tumors, harnessing the body's natural defenses to fight disease growth.

The vaults, barrel-shaped nanoscale capsules found in the cytoplasm of all mammalian cells, were engineered to slowly release a protein, the chemokine CCL21, into the tumor. Pre-clinical studies in mice with lung cancer showed that the protein stimulated the immune system to recognize and attack the cancer cells, potently inhibiting cancer growth, said Leonard Rome, a researcher at UCLA's Jonsson Comprehensive Cancer Center, associate director of the California NanoSystems Institutes and co-senior author of the study.

"Researchers have been working for many years to develop effective immune therapies to treat cancer, with limited success," said Rome, who has been studying vaults for decades. "In lung tumors, the immune system is down-regulated and what we wanted to do was wake it up, find a way to have the cancer say to the immune system, 'Hey, I'm a tumor and I'm over here. Come get me.' "

The study appears in the May 3, 2011 issue of PLoS ONE, a peer-reviewed journal of the Public Library of Science.

The new vault delivery system, which Rome characterized as "just a dream" three years ago, is based on a 10-year, on-going research effort focusing on using a patient's white blood cells to create dendritic cells, cells of the immune system that process antigen material and present it on the surface to other immune system cells. A Phase I study that is part of the effort, led by ULCA's Dr. Steven Dubinett, used a replication-deficient adenovirus to infect the dendritic cells and prompt them to over-secrete CCL21, the first time the chemokine has been administered to humans. The engineered cells -- 10 million at a time -- were then injected directly into the patient's lung cancer to stimulate an immune response.

The early phase study has shown the dendritic cell method is safe, has no side effects and seems to boost the immune response -- Dubinett and his team found T lymphocytes circulating in the blood stream with specific cytokine signatures, indicating that the lymphocytes were recognizing the cancer as a foreign invader.

However, the process to generate dendritic cells from the white blood cells and engineer them to over-secrete CCL21 is cumbersome, expensive and time-consuming. It also requires a Good Manufacturing Practice (GMP) suite, a specialized laboratory critical for the safe growth and manipulation of cells, which many research institutions do not have.

"It gets complicated," said Dubinett, director of the Lung Cancer Program at UCLA's Jonsson Comprehensive Cancer Center, a professor of pathology and laboratory medicine, member of the California NanoSystems Institute and a co-senior author of the paper. "You have to have a confluence of things happen -- the patient has to be clinically eligible for the study and healthy enough to participate, we have to be able to grow the cells and then genetically modify them and give them back."

There also was the challenge of patient-to-patient variability, said Sherven Sharma, a researcher at both the Jonsson Cancer Center and the California NanoSystems Institute, professor of pulmonary and critical care medicine and co-senior author of the study. It was easier to isolate and grow the dendritic cells in some patients than in others, so results were not consistent.

"We wanted to create a simpler way to develop an environment that would stimulate the immune system," Sharma said.

In the Phase I study, it takes more than a week to differentiate the white blood cells into dendritic cells and let them grow to the millions required for the therapy. The dendritic cells are infected with a virus engineered to carry a gene that caused the cells to secrete CCL21 and then injected into the patient's tumor using guided imaging.

"We thought if we could replace the dendritic cells with a nano-vehicle to deliver the CCL21, we would have an easier and less expensive treatment that also could be used at institutions that don't have GMP," Dubinett said.

If successful, the vault delivery method would add a desperately needed weapon to the arsenal in the fight against lung cancer, which accounts for nearly one-third of all cancer deaths in the United States and kills one million people worldwide every year.

"It's crucial that we find new and more effective therapies to fight this deadly disease," Dubinett said. "Right now we don't have adequate options for therapies for advanced lung cancer."

The vault nanoparticles containing the CCL21 have been engineered to slowly release the protein into the tumor over time, producing an enduring immune response. Although the vaults protect the packed CCL21, they act like a time-release capsule, Rome said.

Rome, Dubinett and Sharma plan to test the vault delivery method in human studies within the next three years and hope the promising results found in the pre-clinical animal tumor models will be replicated. If such a study is approved, it would be the first time a vault nanoparticle is used in humans for a cancer immunotherapy.

The vault nanoparticle would require only a single injection into the tumor because of the slow-release design, and it eventually could be designed to be patient specific by adding the individual's tumor antigens into the vault, Dubinett said. The vaults may also be targeted by adding antibodies to their surface that recognize receptors on the tumor. The injection could then be delivered into the blood stream and the vault would navigate to the tumor, a less invasive process that would be easier on the patients. The vault could also seek out and target tumors and metastases too small to be detected with imaging.

Rome cautioned that the vault work is at a much earlier stage than Dubinett's dendritic cell research, but he is encouraged by the early results. The goal is to develop an "off-the-shelf" therapy using vaults.

"In animals, the vault nanoparticles have proven to be as effective, if not more effective, than the dendritic cell approach," he said. "Now we need to get the vault therapy approved by the FDA for use in humans."

Because a vault is naturally occurring particle, it causes no harm to the body and is potentially an ideal vehicle for use in delivery of personalized therapies, Rome said.

The study was funded by a University of California Discovery Grant, a Jonsson Cancer Center fellowship grant, the National Institutes of Health, the UCLA Lung Cancer Program, the Department of Veterans Affairs Medical Research Funds and the University of California's Tobacco-related Disease Program Award.

Story Source:

The above story is reprinted (with editorial adaptations by ScienceDaily staff) from materials provided by University of California - Los Angeles Health Sciences.

Journal Reference:

Upendra K. Kar, Minu K. Srivastava, Åsa Andersson, Felicita Baratelli, Min Huang, Valerie A. Kickhoefer, Steven M. Dubinett, Leonard H. Rome, Sherven Sharma. Novel CCL21-Vault Nanocapsule Intratumoral Delivery Inhibits Lung Cancer Growth. PLoS ONE, 2011; 6 (5): e18758 DOI: 10.1371/journal.pone.0018758

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Thursday, 26 May 2011

'I'm a tumor and I'm over here!' Nanovaults used to prod immune system to fight cancer

ScienceDaily (May 4, 2011) — UCLA scientists have discovered a way to wake up the immune system to fight cancer by delivering an immune system-stimulating protein in a nanoscale container called a vault directly into lung cancer tumors, harnessing the body's natural defenses to fight disease growth.

The vaults, barrel-shaped nanoscale capsules found in the cytoplasm of all mammalian cells, were engineered to slowly release a protein, the chemokine CCL21, into the tumor. Pre-clinical studies in mice with lung cancer showed that the protein stimulated the immune system to recognize and attack the cancer cells, potently inhibiting cancer growth, said Leonard Rome, a researcher at UCLA's Jonsson Comprehensive Cancer Center, associate director of the California NanoSystems Institutes and co-senior author of the study.

"Researchers have been working for many years to develop effective immune therapies to treat cancer, with limited success," said Rome, who has been studying vaults for decades. "In lung tumors, the immune system is down-regulated and what we wanted to do was wake it up, find a way to have the cancer say to the immune system, 'Hey, I'm a tumor and I'm over here. Come get me.' "

The study appears in the May 3, 2011 issue of PLoS ONE, a peer-reviewed journal of the Public Library of Science.

The new vault delivery system, which Rome characterized as "just a dream" three years ago, is based on a 10-year, on-going research effort focusing on using a patient's white blood cells to create dendritic cells, cells of the immune system that process antigen material and present it on the surface to other immune system cells. A Phase I study that is part of the effort, led by ULCA's Dr. Steven Dubinett, used a replication-deficient adenovirus to infect the dendritic cells and prompt them to over-secrete CCL21, the first time the chemokine has been administered to humans. The engineered cells -- 10 million at a time -- were then injected directly into the patient's lung cancer to stimulate an immune response.

The early phase study has shown the dendritic cell method is safe, has no side effects and seems to boost the immune response -- Dubinett and his team found T lymphocytes circulating in the blood stream with specific cytokine signatures, indicating that the lymphocytes were recognizing the cancer as a foreign invader.

However, the process to generate dendritic cells from the white blood cells and engineer them to over-secrete CCL21 is cumbersome, expensive and time-consuming. It also requires a Good Manufacturing Practice (GMP) suite, a specialized laboratory critical for the safe growth and manipulation of cells, which many research institutions do not have.

"It gets complicated," said Dubinett, director of the Lung Cancer Program at UCLA's Jonsson Comprehensive Cancer Center, a professor of pathology and laboratory medicine, member of the California NanoSystems Institute and a co-senior author of the paper. "You have to have a confluence of things happen -- the patient has to be clinically eligible for the study and healthy enough to participate, we have to be able to grow the cells and then genetically modify them and give them back."

There also was the challenge of patient-to-patient variability, said Sherven Sharma, a researcher at both the Jonsson Cancer Center and the California NanoSystems Institute, professor of pulmonary and critical care medicine and co-senior author of the study. It was easier to isolate and grow the dendritic cells in some patients than in others, so results were not consistent.

"We wanted to create a simpler way to develop an environment that would stimulate the immune system," Sharma said.

In the Phase I study, it takes more than a week to differentiate the white blood cells into dendritic cells and let them grow to the millions required for the therapy. The dendritic cells are infected with a virus engineered to carry a gene that caused the cells to secrete CCL21 and then injected into the patient's tumor using guided imaging.

"We thought if we could replace the dendritic cells with a nano-vehicle to deliver the CCL21, we would have an easier and less expensive treatment that also could be used at institutions that don't have GMP," Dubinett said.

If successful, the vault delivery method would add a desperately needed weapon to the arsenal in the fight against lung cancer, which accounts for nearly one-third of all cancer deaths in the United States and kills one million people worldwide every year.

"It's crucial that we find new and more effective therapies to fight this deadly disease," Dubinett said. "Right now we don't have adequate options for therapies for advanced lung cancer."

The vault nanoparticles containing the CCL21 have been engineered to slowly release the protein into the tumor over time, producing an enduring immune response. Although the vaults protect the packed CCL21, they act like a time-release capsule, Rome said.

Rome, Dubinett and Sharma plan to test the vault delivery method in human studies within the next three years and hope the promising results found in the pre-clinical animal tumor models will be replicated. If such a study is approved, it would be the first time a vault nanoparticle is used in humans for a cancer immunotherapy.

The vault nanoparticle would require only a single injection into the tumor because of the slow-release design, and it eventually could be designed to be patient specific by adding the individual's tumor antigens into the vault, Dubinett said. The vaults may also be targeted by adding antibodies to their surface that recognize receptors on the tumor. The injection could then be delivered into the blood stream and the vault would navigate to the tumor, a less invasive process that would be easier on the patients. The vault could also seek out and target tumors and metastases too small to be detected with imaging.

Rome cautioned that the vault work is at a much earlier stage than Dubinett's dendritic cell research, but he is encouraged by the early results. The goal is to develop an "off-the-shelf" therapy using vaults.

"In animals, the vault nanoparticles have proven to be as effective, if not more effective, than the dendritic cell approach," he said. "Now we need to get the vault therapy approved by the FDA for use in humans."

Because a vault is naturally occurring particle, it causes no harm to the body and is potentially an ideal vehicle for use in delivery of personalized therapies, Rome said.

The study was funded by a University of California Discovery Grant, a Jonsson Cancer Center fellowship grant, the National Institutes of Health, the UCLA Lung Cancer Program, the Department of Veterans Affairs Medical Research Funds and the University of California's Tobacco-related Disease Program Award.

Story Source:

The above story is reprinted (with editorial adaptations by ScienceDaily staff) from materials provided by University of California - Los Angeles Health Sciences.

Journal Reference:

Upendra K. Kar, Minu K. Srivastava, Åsa Andersson, Felicita Baratelli, Min Huang, Valerie A. Kickhoefer, Steven M. Dubinett, Leonard H. Rome, Sherven Sharma. Novel CCL21-Vault Nanocapsule Intratumoral Delivery Inhibits Lung Cancer Growth. PLoS ONE, 2011; 6 (5): e18758 DOI: 10.1371/journal.pone.0018758

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Friday, 6 May 2011

Protein identified as enemy of vital tumor suppressor PTEN

ScienceDaily (May 3, 2011) — A protein known as WWP2 appears to play a key role in tumor survival, a research team headed by a scientist at The University of Texas MD Anderson Cancer Center reports in an advance online publication of Nature Cell Biology.

Their research suggests that the little-studied protein binds to the tumor-suppressing protein PTEN (phosphatase and tensin homologue deleted on chromosome 10), marking it for destruction by proteasomes, which degrade proteins and recycle their components.

PTEN plays a role regulating the cellular reproduction cycle and prevents rapid cell growth, a hallmark of malignant cells. Its gene is mutated or deleted in many types of cancer, the researchers noted.

The WWP2 (atrophin-1 interacting protein 2) protein was discovered in the laboratory of Junjie Chen, Ph.D., professor and chair in MD Anderson's Department of Experimental Radiation Oncology and senior author of the paper.

"We were trying to find regulators of PTEN when we isolated the protein WWP2 as a putative PTEN-associated protein," Chen said. He noted that WWP2 caught the researchers' attention because it is similar to the NEDD4-1 protein, which has been proposed as a regulator of PTEN function.

First suspect doesn't affect PTEN

WWP2 is an E3 ubiquitin ligase in the NEDD4-like protein family. Ubiquitins attach to other proteins, labeling them for degradation by proteasomes. NEDD4-like proteins play important roles regulating gene transcription, embryonic stem cells, cellular transport and activation of T cells.

"But when NEDD4-1 is deleted in mice, researchers have not seen a clear change in PTEN protein level," Chen noted. "These findings suggest that there may be other PTEN regulators.

"Because WWP2 is part of the NEDD4-like family, we decided to take a look at it to see if it's the real regulator of PTEN," Chen continued. "When you knock down WWP2, you see an increase in PTEN level, whereas with WWP2 overexpression you can see a decrease in PTEN. This finding indicates that WWP2 may be involved in PTEN's regulation."

Overall, the study results suggest that WWP2 can regulate PTEN stability, Chen said.

Possibly a cancer-driving gene

The team uncovered evidence that WWP2 is a potential oncogene -- a driver in tumor formation and growth. In one experiment, mice with normal WWP2 developed prostate cancer tumors after nine weeks that were more than three times the size of tumors in mice with WWP2 silenced.

Chen noted that more research is needed to determine whether WWP2 is functionally important in tumors or in tumor formation. "We need to look at real tumor samples to determine whether tumors with reduced PTEN expression could result from the overexpression of WWP2."

He added that some early studies suggest that WWP2 may operate in tumors, but a correlation between WWP2 overexpression and PTEN downregulation in tumors has not been established.

This work was supported in part by a grant from the Department of Biotechnology, Ministry of Science and Technology, India, a U.S. Department of Defense Era of Hope Research Scholar Award, an NIH Specialized Program of Research Excellence award to Mayo Clinic, and a National Cancer Institute grant to MD Anderson. Also, fellowship support came from the Department of Biotechnology, Council of Scientific and Industrial Research and University Grants Commission, India, and support from the Institute of Life Sciences, Hyderabad, India.

Co-authors with Chen are first author Subbareddy Maddika, Ph.D, Sridhar Kavela, Neelam Rani, and Vivek Reddy Palicharla, all of the Laboratory of Cell Death and Cell Survival, Centre for DNA Fingerprinting and Diagnostics in Nampally, Hyderabad, India; Jenny Pokorny and Jann Sarkaria, M.D., of the Mayo Clinic, Rochester, Minn.

Story Source:

The above story is reprinted (with editorial adaptations by ScienceDaily staff) from materials provided by University of Texas M. D. Anderson Cancer Center.

Journal Reference:

Subbareddy Maddika, Sridhar Kavela, Neelam Rani, Vivek Reddy Palicharla, Jenny L. Pokorny, Jann N. Sarkaria, Junjie Chen. WWP2 is an E3 ubiquitin ligase for PTEN. Nature Cell Biology, 2011; DOI: 10.1038/ncb2240

Note: If no author is given, the source is cited instead.

Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.


View the original article here