Tag: melanoma

  • UCLA Wins .9 Million to Test Drugs That Might Make Melanoma Immunotherapy Work for More Patients

    UCLA Wins $3.9 Million to Test Drugs That Might Make Melanoma Immunotherapy Work for More Patients

    Immune checkpoint inhibitors transformed melanoma treatment. They also leave a large share of patients behind, and figuring out what to do for those patients is the central unsolved problem in the field.

    UCLA researchers have received a five-year, $3.9 million grant from the National Cancer Institute to work on it. The award goes to Cristina Puig-Saus, an associate professor of microbiology, immunology and molecular genetics and surgical oncology at the David Geffen School of Medicine and an investigator at the UCLA Health Jonsson Comprehensive Cancer Center, according to UCLA Health. She is also a member of the UCLA Broad Stem Cell Research Center and the UCLA Parker Institute for Cancer Immunotherapy.

    This is funding for research, not a result. Nothing has been shown to help any patient, and the work described is preclinical.


    The Grant Is About Fixing Non-Response, Not Explaining It

    A distinction worth drawing precisely, because it changes what to expect from this work.

    The project is not primarily a study of why some patients respond, and others do not. It is drug development aimed at overcoming barriers already identified. Using a drug screening platform developed in the Puig-Saus laboratory to test thousands of compounds, the team identified two candidates, and the two work by different routes.

    One appears to strengthen the interaction between T cells and cancer cells, helping the immune system mount a more effective attack. The other makes tumor cells more susceptible to destruction by T cells without directly altering the immune cells themselves. That second approach is notable because it sidesteps the problem of a patient’s T cells being exhausted or scarce.

    The funding will support testing whether those compounds boost the effectiveness of existing immunotherapies in preclinical melanoma models, investigating how the drugs work, and evaluating their potential to be used safely. Puig-Saus has said that because the compounds are designed to work alongside existing immunotherapies, the approach could potentially apply across many cancer types.


    Why So Many Patients Do Not Respond

    The underlying problem is worth explaining, because it is what any approach has to solve.

    Checkpoint inhibitors work by releasing the brakes on T cells so they can attack tumors. That only helps if T cells can find the tumor in the first place. Two failure modes dominate.

    The first is recognition. T cells often struggle to identify cancer cells, particularly when tumors reduce the display of the surface molecules that mark a cell as abnormal. A tumor the immune system cannot see is not helped by removing a brake.

    The second is evasion. Tumors evolve under immune pressure. They can lose the specific proteins T cells were targeting, recruit suppressive cells, or create a local environment that exhausts T cells. Tumors described as cold have few infiltrating T cells to begin with.

    The scale of the gap is substantial. UCLA has previously reported that 40 percent of patients with melanoma do not respond to checkpoint blockade, with response especially poor in rarer forms including acral melanoma on the palms and soles, uveal melanoma in the eye, and mucosal melanoma.


    The Screening Platform Is the Method Worth Noting

    How the two candidate compounds were found says something about where cancer drug discovery has moved.

    Rather than starting from a hypothesis about a single molecule, the laboratory built a screening platform capable of testing thousands of compounds for effects on the interaction between T cells and cancer cells. That approach asks which compounds change the behavior of the system, then works backward to understand why.

    The advantage is that it can surface candidates nobody would have predicted from existing biology. The trade-off is that a compound identified this way arrives without a fully worked-out mechanism, which is precisely why part of the grant is devoted to investigating how the drugs work rather than only whether they work.

    That mechanistic question is not academic. Understanding how a compound acts is what allows researchers to predict side effects, identify which patients might benefit, and design sensible combinations with existing immunotherapies.


    The Timeline for Anything Reaching Patients

    Preclinical grants are frequently reported in ways that imply proximity to treatment, and the arithmetic does not support that.

    Five years of preclinical work would be followed, if results justify it, by formal toxicology studies, manufacturing under regulated conditions, and an investigational new drug application before a first human trial. That first trial would test safety and dosing rather than benefit. Efficacy testing would follow.

    Most compounds entering this pipeline do not reach patients. That is not pessimism about this particular project; it is the base rate, and it is why the honest framing is that federal funding has been committed to a promising question.

    What patients with melanoma can act on is different. Checkpoint inhibitors, targeted therapies for BRAF-mutant disease, and tumor-infiltrating lymphocyte therapy are all available now depending on tumor characteristics and prior treatment. Molecular testing of the tumor determines which apply.

    For patients whose disease has progressed on checkpoint inhibitors, clinical trials are frequently the most substantive option, and enrollment is concentrated at academic and NCI-designated cancer centers. The same laboratory is separately advancing an experimental CAR T cell therapy for melanoma toward a trial, which is the kind of option worth asking an oncologist about directly.

    Melanoma prevention and early detection remain the most effective interventions available. Anyone noticing a mole that changes in size, shape, or color, has an irregular border or uneven color, or looks different from other moles should have it examined. Early-stage melanoma is frequently curable with surgery alone.

    This article is general information and is not medical advice.



    Frequently Asked Questions

    What was funded? A five-year, $3.9 million National Cancer Institute grant to Cristina Puig-Saus at UCLA.

    What will the money support? Preclinical testing of two compounds identified through a drug screening platform, aimed at boosting existing immunotherapies in melanoma models.

    How do the two compounds differ? One strengthens the interaction between T cells and cancer cells. The other makes tumor cells more vulnerable to T cells without altering the immune cells.

    Why do checkpoint inhibitors fail in some patients? T cells often cannot recognize cancer cells, and tumors evolve to evade immune attack. UCLA has reported that 40 percent of melanoma patients do not respond.

    Has anything been shown to work? No. This is funding for research. No patient benefit has been demonstrated.

    When could this reach patients? Not for many years, if at all. Preclinical work precedes toxicology, manufacturing, and first-in-human safety trials.

    What can melanoma patients do now? Ask about molecular testing, currently approved options, and open clinical trials, particularly at NCI-designated centers.

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  • Melanoma ABCDEs, Non‑Melanoma Skin Cancers, and When to See a Dermatologist

    Melanoma ABCDEs, Non‑Melanoma Skin Cancers, and When to See a Dermatologist

    Skin cancer affects millions of people each year, yet many cases go undetected until they reach advanced stages. Understanding the differences between melanoma and non-melanoma skin cancers, recognizing warning signs, and knowing when professional evaluation is necessary can make the difference between a simple treatment and a complex medical journey.

    This guide breaks down everything people need to know about skin cancer screening, detection methods, and dermatological care.

    Understanding Melanoma and the ABCDE Rule

    Melanoma represents the most serious form of skin cancer, developing when melanocytes, cells responsible for skin pigmentation, become malignant.

    Unlike other skin cancers that grow slowly, melanoma can spread rapidly to other parts of the body if not caught early. This is why early detection through regular skin cancer screening has become so critical.

    The melanoma ABCDE rule serves as the first line of defense for detecting potentially dangerous spots. Each letter represents a key warning sign that distinguishes melanoma from benign moles.

    Asymmetry means one half of the lesion doesn’t match the other half. Normal moles typically appear symmetrical, with both sides mirroring each other. A spot that looks lopsided warrants professional evaluation.

    Border irregularity refers to edges that appear scalloped, notched, or poorly defined. Benign moles usually have smooth, even borders. Melanomas often display uneven or fuzzy boundaries that blur into surrounding skin.

    Color variation occurs when a single lesion contains multiple shades, browns, blacks, tans, reds, whites, or even blues. While common moles tend to be uniform in color, melanomas frequently show dramatic color differences within the same growth.

    Diameter larger than 6 millimeters (roughly the size of a pencil eraser) represents another red flag. Though some melanomas start smaller, this measurement helps distinguish suspicious growths from typical moles.

    Evolving characteristics, the “E” added to the original ABCD rule, describe any changes over time. Enlargement, shape shifting, color changes, bleeding, itching, or crusting all warrant medical attention. The key insight here is that normal moles remain stable throughout life, while melanomas actively change.

    It’s important to note that not all melanomas fit neatly into the ABCDE criteria. Some melanomas appear as flat, uniform-colored spots that don’t match the typical pattern.

    This is why the “Ugly Duckling” sign, identifying any lesion that looks different from a person’s other moles, provides an additional detection tool with excellent sensitivity for catching melanomas.

    Non-Melanoma Skin Cancers: Basal Cell and Squamous Cell Carcinoma

    While melanoma receives significant attention, basal cell carcinoma and squamous cell carcinoma account for the vast majority of skin cancer diagnoses. These non-melanoma skin cancers originate from different layers of skin and behave differently than melanoma.

    Basal cell carcinoma represents the most common form of skin cancer, accounting for 70-90% of all diagnoses. Developing in the basal cell layer, the deepest layer of the epidermis, BCC typically grows slowly and rarely spreads to other areas, according to the World Health Organization.

    People often describe early basal cell carcinoma as a pearly lump or nodule with a waxy, translucent appearance. Some lesions develop a central indentation or crusting, while others appear shiny or bright pink. The condition usually emerges on sun-exposed areas like the face, neck, shoulders, and back.

    Squamous cell carcinoma accounts for 20-30% of non-melanoma skin cancers and grows more aggressively than BCC. Originating in the upper layer of the epidermis, squamous cell carcinoma has a slightly higher risk of spreading to lymph nodes and distant organs compared to basal cell carcinoma.

    The typical appearance includes a rough, scaly patch or wart-like growth, often with reddish coloration and irregular borders. Some squamous cell carcinoma lesions develop a crusted or bleeding center.

    A common question arises about whether basal cell carcinoma can transform into squamous cell carcinoma. The answer is no, they develop from different cell types and remain distinct cancers.

    However, individuals who develop one type of non-melanoma skin cancer face increased risk for developing the other type later in life. More significantly, people with a personal history of basal cell carcinoma have approximately 6.6 times higher risk of eventually developing melanoma.

    Risk Factors and Who Should Consider More Frequent Skin Cancer Screening

    Understanding personal risk factors helps determine appropriate screening frequency. Ultraviolet light exposure remains the primary cause of all skin cancers. Chronic sun exposure, intense intermittent sunburns (especially during childhood), and tanning bed use all significantly increase risk.

    Fair skin that sunburns easily, light hair, and light-colored eyes indicate higher susceptibility.

    Additional risk factors include age, melanoma increasingly affects younger populations, while basal and squamous cell carcinomas typically emerge later in life.

    People with 50 or more moles, a personal history of skin cancer, or family members with melanoma or non-melanoma skin cancers require more vigilant monitoring. Immunosuppressed individuals and those with certain genetic conditions face elevated risk as well.

    Geographic location matters too. People living in sunny climates experience greater cumulative UV exposure. Occupational factors, outdoor workers in construction, agriculture, and landscaping, similarly need enhanced screening protocols.

    Early Detection Through Self-Examination and Professional Assessment

    Monthly self-examination provides the foundation for catching skin cancer early. A thorough exam requires a well-lit bathroom, a full-length mirror, and a hand-held mirror for difficult-to-see areas. Using a blow dryer helps examine the scalp methodically, as per the International Agency for Research on Cancer.

    The eight-step self-exam process covers every body surface: face and ears, scalp, hands and arms, front of upper body, back of upper body, lower back and buttocks, front and sides of legs, and feet and genital area. Documenting findings with measurements and photographs creates a baseline for tracking changes over time.

    People should schedule professional skin cancer screening appointments based on their risk level. Those with standard risk, no personal history, minimal sun exposure, typically benefit from annual full-body exams starting around age 40, with every-three-year exams in their 20s and 30s.

    High-risk individuals may need exams every six months or even quarterly, particularly those with previous melanoma diagnoses.

    When to See a Dermatologist

    Certain red flags warrant immediate professional evaluation. Any lesion fitting the ABCDE criteria, an “ugly duckling” spot that looks different from surrounding moles, new moles appearing in adulthood, existing moles showing changes in size or color, and any sore that doesn’t heal within three weeks should prompt a dermatology appointment.

    During a professional skin exam, dermatologists perform complete visual inspection from scalp to soles, pay special attention to often-missed areas like behind ears and between toes, and use dermoscopy (magnified examination) for suspicious lesions. Biopsies of concerning spots provide definitive diagnosis.

    The importance of early detection cannot be overstated. Melanomas caught in stage 1 (localized) show approximately 95% five-year survival rates, while stage 4 metastatic melanomas drop to 15-20% survival rates.

    Thickness remains the most significant prognostic factor, thinner melanomas caught before spreading have far better outcomes.

    Frequently Asked Questions

    1. Can skin cancer develop on areas of my body that never get sun exposure?

    Yes. Melanoma and other skin cancers can appear anywhere on the body, including the scalp, between toes, under fingernails, and genital areas. This is why full-body exams that include every skin surface are essential, not just sun-exposed areas.

    2. If I have a family history of melanoma, does that mean I will definitely develop it?

    No. Family history increases risk significantly, but genetics interact with environmental factors like UV exposure. Someone with family history who practices sun protection and gets regular screening has better outcomes than someone without family history who avoids sun safety.

    3. Why do dermatologists sometimes remove moles that look completely normal?

    Dermatologists may remove moles that are dysplastic (atypical), in irritation-prone locations, showing subtle changes, or cosmetically bothersome. Dysplastic moles have increased melanoma potential and warrant removal even if they appear normal.

    4. How long does it take for skin cancer to develop, and can it appear suddenly?

    Most non-melanoma skin cancers develop slowly over 10-20+ years. Melanoma timelines vary, some develop gradually while others change rapidly. Regular monthly self-exams and professional screening catch cancers earlier, before they advance.



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  • Dr. Michael Piepkorn on How the Discovery of the p16 Gene Transformed Familial Melanoma Diagnosis

    Dr. Michael Piepkorn on How the Discovery of the p16 Gene Transformed Familial Melanoma Diagnosis

    The discovery of the p16 gene was a significant turning point in understanding familial melanoma. This development was primarily responsible for enhancing genetic counseling for families at higher risk. Testing for expression of the p16 gene product in tumors suspected of being melanoma assists in the accuracy of biopsy diagnosis.

    Dr. Michael Piepkorn, a dermatologist and dermatopathologist recognized for his work in the field of melanoma over many years, has been an advocate for the role of p16 in melanoma diagnosis and in gene analysis in improving the management of melanoma-prone families. His expertise and research have helped clarify how inherited mutations influence melanoma risk and how genetic testing can guide prevention strategies.

    Understanding the p16 Gene and Its Role in Melanoma Risk

    The p16 gene, also known as CDKN2A, is a tumor suppressor gene that plays a critical role in controlling cell growth. Mutations in this gene can lead to an increased likelihood of developing melanoma, particularly in families with a history of the disease.

    Unlike traditional diagnosis, which focuses on detecting melanoma after it occurs, the identification of germline mutations in p16 allows clinicians to assess inherited risk. This distinction helped usher in a new era for preventive care tailored to individuals carrying such mutations.

    Screening for Germline Mutations in Families

    Screening for mutations in the p16 gene became feasible with advancements in genetic testing. When a mutation exists in one copy of the gene, it is present in almost every cell of the body. This is because such anomalies are inherited from a parent through one of the two germ cells at conception.

    Testing for these germline mutations can be conducted using blood samples or buccal swabs, which collect cells from the inside of the cheek. This approach enables early identification of at-risk individuals before melanoma develops, allowing for closer monitoring and timely intervention.

    Databases Linking Specific Mutations to Melanoma Risk

    Extensive research and data collection have helped in the development of databases that correlate particular p16 mutations with varying degrees of lifetime melanoma risk. These resources provide valuable insights into how much a given mutation elevates an individual’s risk beyond the baseline population level.

    This information is essential for genetic counselors. With the information they now have access to, they can advise families on the best preventive measures, surveillance plans, and lifestyle modifications to mitigate melanoma risk.

    Commercial Testing Services and Their Impact

    Companies such as Myriad Genetics in Salt Lake City have played a significant role in making p16 genetic testing widely accessible. By offering comprehensive panels to detect inherited melanoma risk factors, these services support healthcare providers in delivering personalized genetic counseling.

    Dr. Michael Piepkorn himself has recognized the importance of these advancements, emphasizing that accurate and timely genetic testing is a cornerstone of effective familial melanoma management.

    Advancing Melanoma Care Through Expertise and Innovation

    Dr. Michael Piepkorn‘s career spans decades of dedicated research and clinical work in melanoma and dermatopathology. His involvement in identifying the p16 gene’s role in familial melanoma has influenced how genetic information is integrated into patient care. Through teaching, mentoring, and ongoing research, he continues to support innovations that improve early detection and prevention strategies.

    The discovery of the p16 gene transformed the approach to familial melanoma by enabling genetic counseling based on inherited risk rather than reactive diagnosis. Supported by experts like Dr. Michael Piepkorn, this advancement allows families to understand their melanoma risk better and take proactive steps to manage it. As genetic testing technologies evolve, the ability to identify and mitigate inherited melanoma risk will become increasingly precise and medically significant.

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