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Branching out: Tomato genes point to new medicines

A close-up of a hand holding several clusters of ripe red cherry tomatoes still attached to green stems, with leafy green foliage in the background.
Tomatoes grow on the vine at Uplands Farm, about a mile east of 黑料吃瓜资源鈥檚 main campus on Long Island. The agricultural research station offers a shared resource for CSHL scientists studying various topics, from plant genetics to quantitative biology and cancer.

Picture juicy red tomatoes on the vine. What do you see? Some tomato varieties have straight vines. Others are branched. The question is why. New research from 黑料吃瓜资源 (CSHL) provides the strongest evidence to date that the answer lies in what are called cryptic mutations. The findings have implications for agriculture and medicine, as they could help scientists fine-tune plant breeding techniques and clinical therapeutics.

Cryptic mutations are differences in DNA that don鈥檛 affect physical traits unless certain other genetic changes occur at the same time. CSHL Professor & HHMI Investigator Zachary Lippman has been researching cryptic mutations鈥 effects on plant traits alongside CSHL Associate Professor David McCandlish and Weizmann Institute Professor . Their latest study, published in Nature, reveals how interactions between cryptic mutations can increase or decrease the number of reproductive branches on tomato plants. Such changes result in more or fewer fruits, seeds, and flowers. The interactions in question involve genes known as paralogs.

鈥淧aralogs emerge across evolution through gene duplication and are major features of genetic networks,鈥 Lippman explains. 鈥淲e know paralogs can buffer against each other to prevent gene mutations from affecting traits. Here, we found that collections of natural and engineered cryptic mutations in two pairs of paralogs can impact tomato branching in myriad ways.鈥

Image of CSHL PI's Zachary Lippman and David McCandlish
Left: CSHL Professor & HHMI Investigator Zachary Lippman. Right: CSHL Associate Professor David McCandlish.

One crucial component of the project was the pan-genome Lippman and colleagues completed for Solanum plants around the globe, including cultivated and wild tomato species. Where genomes typically encompass one species, pan-genomes capture DNA sequences and traits across many species. The pan-genome pointed Lippman鈥檚 lab toward natural cryptic mutations in key genes controlling branching. Lippman lab postdoc Sophia Zebell then engineered other cryptic mutations using CRISPR. That enabled Lippman鈥檚 lab to count the branches on more than 35,000 flower clusters with 216 combinations of gene mutations. From there, McCandlish lab postdoc Carlos Mart铆-G贸mez used computer models to predict how interactions between specific combinations of mutations in the plants would change the number of branches.

鈥淲e can now engineer cryptic mutations in tomatoes and other crops to modify important agricultural traits, like yield,鈥 Lippman says. Additionally, the kind of modeling done here could have many other applications. McCandlish explains:

鈥淲hen making mutations or using a drug that mimics the effects of a mutation, you often see side effects. By being able to map them out, you can choose the manner of controlling your trait of interest that has the least undesirable side effects.鈥

In other words, this research points not only to better crops but also better medicines. So, you see tomatoes? Science sees tomorrow.

Written by: Samuel Diamond, Senior Communications Strategist | [email protected] | 516-367-5055


Funding

National Institutes of Health, Israel Science Foundation, Simons Center for Quantitative Biology at 黑料吃瓜资源, National Science Foundation, Plant Genome Research Program, Gatsby Charitable Foundation, Howard Hughes Medical Institute

Citation

Zebell, S.G., et al., 鈥淐ryptic variation fuels plant phenotypic change through hierarchical epistasis鈥, Nature, July 9, 2025. DOI:

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