Researchers used molecular scissors to alter the sugar coats of cancer cells, promoting tumor growth with one fragment and inhibiting it with another. This discovery could lead to targeted cancer treatments by exploiting the biological balancing act between different sugar fragments and signaling molecules.
Researchers have discovered a new target for treating cancer cells that rely on survivin to survive. This finding offers new hope for patients with cancer who are struggling with this aggressive protein.
Researchers found that certain cancer drugs induce features of cellular aging, which can help stop the growth of cancer cells. The study suggests that some cancer treatments may have an unexpected side effect: causing premature aging in tumor cells.
Telomeres, protective caps on chromosome ends, are shorter in people exposed to arsenic, increasing cancer risk. Long-term arsenic exposure has been associated with accelerated telomere shortening, a potential biomarker for arsenic poisoning.
Scientists at the University of Illinois have developed microspheres that enhance contrast in optical coherence tomography, allowing for improved imaging of individual cells and early tumor detection. The microspheres can be targeted to specific tumors, enabling enhanced OCT imaging for surgical guidance.
Researchers discovered that VEGF promotes the growth and survival of malignant tumor cells, affecting a wide range of cancers. The study found that inhibiting VEGF's effects can slow or halt tumor growth and is expected to improve treatment outcomes for some patients.
Researchers at UC Berkeley have discovered a single gene that can stimulate the immune system to reject a range of cancer tumors. The gene, which activates natural killer cells and other immune cells, shows promise as a potential basis for a vaccine therapy.
Researchers have uncovered evidence suggesting that genetic changes leading to breast cancer occur first in epithelial cells of breast tissue. LOH analysis reveals frequent mutations in both epithelial and stromal cells, indicating a multi-step process.
Researchers found that aggressive melanoma cells leave behind a molecular track in the extracellular matrix that contains information and cues. These cues can cause less aggressive tumor cells to become more aggressive when they interact with the same matrix.
Scientists at Massachusetts General Hospital have developed a new imaging technique that allows for the visualization of individual cells within living tumors. This technology enables researchers to monitor gene expression, therapy effectiveness, and tumor-cell interactions with normal cells, providing new insights into cancer biology.
Researchers at UCSF Cancer Research Institute have made an observation that could explain the ability of modified cold virus ONYX-015 to kill cancer cells. The finding suggests that ONYX-015 targets a genetic vulnerability in tumor cells, specifically those with mutations or defects in p53 and p14ARF genes.
Researchers at the University of Wisconsin-Madison have identified two compounds, gamma-tocotrienol and beta-ionone, that suppress the growth of three types of human cancer cells. These isoprenoids, found in cereal grains and fruits/vegetables, work by interfering with cell division and disrupting cholesterol synthesis.
A preclinical study published in Nature Medicine demonstrated that Immunex's TRAIL molecule suppresses tumor growth and induces complete remission in a high proportion of treated mice. The study shows promise for the treatment of various cancers, with the potential for minimal toxicity.
A new strategy to treat and prevent tumors has been developed by University of Pittsburgh researchers using dendritic cells. The approach effectively prevents tumor development in healthy mice and reduces tumors in 80% of mice with established tumors, significantly prolonging their survival.