ScienceOctober 4, 2026

Understanding MYC: Why a Key Cancer Gene Is Hard to Stop

Key Vocabulary

oncogene/ˈɒn.kəˌdʒiːn/
A gene that can cause normal cells to become cancerous when altered.
"MYC is an oncogene that drives tumor growth."
dysregulation/ˌdɪsˌrɛɡ.jʊˈleɪ.ʃən/
Loss of normal control of a biological process.
"Dysregulation of MYC changes cell division rates."
ecDNA/iː siː ˈdiː.ɛn.eɪ/
Extrachromosomal DNA that can carry extra copies of genes in cancer cells.
"ecDNA can amplify MYC and raise its expression."
chromatin/ˈkroʊ.mə.tɪn/
The complex of DNA and proteins that packages chromosomes in the nucleus.
"Chromatin regulators help control gene amplification."
PROTAC/ˈproʊtæk/
A molecule that recruits the cell's degradation machinery to destroy target proteins.
"PROTACs have been studied to remove MYC-related proteins."

Listening

Understanding MYC: Why a Key Cancer Gene Is Hard to Stop

The MYC oncogene exerts widespread control over cell growth, metabolism and division, and its dysregulation is implicated in roughly 70% of human cancers, which helps explain why researchers consider it a central driver of tumor behavior. Because the MYC protein is intrinsically disordered, lacks a defined pocket for small molecules, and functions in the cell nucleus, it has long been labeled 'undruggable', so conventional drug discovery strategies have had limited success. Nevertheless, several laboratories have mapped regulatory DNA elements and epigenetic factors that sustain high MYC levels, revealing indirect vulnerabilities that could be exploited therapeutically.

For example, researchers studying pediatric medulloblastoma have identified an ecDNA-linked enhancer, called ecMYC E1, that drives high MYC expression in amplified tumors and can be disrupted to lower MYC levels, although cancer cells may adapt by increasing ecDNA copy number. Other teams have shown that chromatin-modifying enzymes—such as KDM4C and SETD2—act as gatekeepers for MYC amplification, suggesting that targeting these epigenetic regulators might prevent copy-number gains. These mechanistic insights have been reported in genomic and mouse studies and point to routes beyond direct MYC inhibition.

Drug platforms that degrade proteins (PROTACs), engineered peptides like Omomyc, and compounds that break oncogenic feedforward loops have produced promising preclinical activity against MYC-driven models. A biotech company has translated this progress into the clinic and recently treated the first patient in a Phase 2a trial of a MYC inhibitor, while other groups continue to refine enhancer- and epigenetic-targeting approaches. If these strategies can be shown to work safely in humans, they would mark a major shift in how the field confronts a gene long thought untouchable.

267 words

Quiz

1. What percent of human cancers is MYC implicated in?
2. Which two chromatin regulators are named as gatekeepers for MYC amplification?
3. What enhancer name is linked to MYC in pediatric medulloblastoma?

Reading Practice

Read the article from the Listening section aloud. Your AI teacher will give you pronunciation feedback.

Discussion

1

Do you think indirect drug strategies (like targeting enhancers) are easier to accept than direct inhibition? Why?

2

Have you or someone you know taken part in a clinical trial, and what was that experience like?

3

What concerns would you have if a drug targeted a process used by both healthy and cancer cells?

4

Would you follow news about new lab findings on genes like MYC? What would keep you interested?

5

How do you feel when scientists say a problem is 'undruggable' and then find new ways to try?

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