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Home NEWS Science News Agriculture

Plants Remember the Sun: Parental UV-B Exposure Shapes Offspring Growth Through DNA Methylation

Bioengineer by Bioengineer
October 1, 2026
in Agriculture
Reading Time: 6 mins read
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Plants Remember the Sun: Parental UV-B Exposure Shapes Offspring Growth Through DNA Methylation
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In a discovery that could reshape how scientists think about plant resilience in a changing world, researchers in China have shown that the ultraviolet radiation experienced by one generation of a clonal plant can leave a lasting imprint on the next — and that this inherited memory appears to depend on DNA methylation, one of the most fundamental epigenetic mechanisms in biology. The study, published in BMC Plant Biology by Jiaxin Quan and colleagues working with corresponding author Ming Yue at Xi’an Botanical Garden and Northwest University, reveals that offspring of the ground ivy Glechoma longituba adopt strikingly different growth strategies depending on both their parents’ UV-B history and the spatial pattern of UV-B in their own environment. The work offers one of the clearest demonstrations yet that environmental heterogeneity — not just environmental stress itself — determines how parental effects are expressed, and it points to a chemical mark on DNA as the likely carrier of that memory across generations.

The experiment was designed around a deceptively simple question: when a parent plant has experienced elevated ultraviolet-B radiation, do its offspring behave differently, and does that difference depend on the kind of environment the offspring find themselves in? UV-B radiation, the short-wavelength portion of sunlight that reaches Earth’s surface, is a potent environmental stressor for plants. It damages DNA, triggers the production of protective pigments, and alters patterns of growth and development. But natural environments are rarely uniform. Sunlight filters through canopy gaps, falls in shifting patches across a forest floor, and varies dramatically from one square meter to the next. The researchers reasoned that a parental memory of UV-B exposure would only be useful to offspring if it could be deployed in a way that matched the actual pattern of UV-B they encountered — and that testing this would require exposing offspring to two fundamentally different kinds of patchy environments.

To do this, the team first exposed parent ramets of Glechoma longituba, a stoloniferous clonal herb common in China, to UV-B radiation. Some parent plants were also treated with 5-azacytidine, or 5-Azac, a well-established demethylation agent that chemically strips methyl groups from DNA. This pharmacological approach is the key to the study’s mechanistic ambition: if parental UV-B effects on offspring depend on DNA methylation, then erasing methylation marks in the parent should abolish or alter those effects. The offspring generation was then grown under two types of heterogeneous UV-B environments. In the first, designated Re, UV-B-rich and UV-B-free patches alternated in a regular, predictable pattern. In the second, designated Ra, patches were distributed randomly, so offspring could not anticipate where high or low radiation would occur. This design allowed the researchers to separate the influence of parental experience from the influence of environmental pattern — a distinction that most studies of parental effects have never attempted.

The results were unambiguous on the first point: parental UV-B exposure significantly enhanced clonal growth in the offspring generation. But the way that enhancement was expressed depended entirely on the pattern of the offspring environment. In the regularly alternating environment, offspring from UV-B-treated parents shifted their strategy underground, increasing allocation to below-ground biomass while simultaneously boosting photosynthetic capacity above ground. This combination suggests a plant preparing for sustained competition and resource capture — building a stronger root system while improving its ability to harvest light when it encounters favorable patches. In the randomly distributed environment, the same parental history produced a completely different phenotype: offspring elongated their secondary branch stolons, the horizontal runners from which new ramets sprout, and allocated more of their ramets to control patches with low or no UV-B. In other words, the plants used their inherited information to escape, placing their descendants where the radiation threat was lowest.

The contrast between these two strategies is what makes the study remarkable. A regularly alternating environment is predictable: a plant that can detect the rhythm of high and low UV-B can plan its growth accordingly, investing in structures that will pay off over the long term. A random environment offers no such predictability, so the optimal strategy becomes one of risk avoidance — spreading stolons rapidly and concentrating new growth in the safest available patches. The parental UV-B experience did not simply make offspring tougher or faster-growing in a general sense; it equipped them with a flexible toolkit whose deployment was calibrated to the statistical structure of the environment they faced. This is pattern-dependent plasticity, and it implies that the parental effect encodes something more sophisticated than a blanket stress response.

The pharmacological arm of the experiment delivered the study’s most provocative finding. When parents were treated with 5-azacytidine, many of the parental UV-B effects were abolished outright, and some were reversed. Offspring whose parents had received both UV-B and the demethylation agent failed to show the enhanced clonal growth, the altered biomass allocation, and the strategic ramet placement that characterized offspring of UV-B-exposed parents alone. Because 5-azacytidine acts by removing methyl groups from cytosine bases in DNA, the most parsimonious interpretation is that DNA methylation patterns established or modified by the parental UV-B experience are what carry the environmental memory into the next generation. The authors are careful to frame this as implicating methylation rather than proving it definitively — the agent can have off-target effects, and the study did not directly sequence methylated regions of the genome — but the pattern of abolition and reversal is exactly what a methylation-mediated mechanism would predict.

DNA methylation is an attractive candidate for transgenerational environmental memory in plants for several reasons. Unlike genetic mutations, methylation marks can be established rapidly in response to environmental cues, yet some of them persist through cell division and even through meiosis, allowing them to be inherited by offspring without any change in DNA sequence. In clonal plants like Glechoma longituba, which reproduce vegetatively through stolons and ramets, epigenetic states can propagate across physically connected generations with particular fidelity. This raises the possibility that clonal plant populations, which often dominate the ground layer of forests, grasslands, and disturbed habitats, may possess a form of collective memory: older ramets that have weathered UV-B stress could prime younger ramets to respond appropriately, with the response tuned to the spatial predictability of the radiation environment. Such a mechanism would have profound implications for how plant populations cope with rising UV-B levels, which have been increasing in many regions as stratospheric ozone recovery remains uneven.

The study also fills a conceptual gap in the parental effects literature. Ecologists have documented parental environmental effects in dozens of species, showing that offspring of stressed parents are often more tolerant of the same stress. But nearly all of these studies expose offspring to uniform conditions. By manipulating the spatial pattern of the offspring environment, Quan and colleagues have shown that the expression of parental effects is itself context-dependent — that the same inherited information can produce opposite phenotypic outcomes depending on whether the environment is regular or random. This adds a layer of complexity that models of plant adaptation will need to incorporate. It also suggests that experiments conducted in homogeneous greenhouse conditions may systematically underestimate or mischaracterize the parental effects that operate in nature, where heterogeneity is the rule rather than the exception.

The practical implications extend beyond ecology into agriculture. Many crop plants are clonally propagated, including potatoes, cassava, sugarcane, and numerous fruit species, and epigenetic variation in clonal crops is already known to influence yield and stress tolerance. If parental UV-B experience can prime offspring growth strategies through methylation-dependent mechanisms, then the growing conditions of mother plants in propagation programs could be deliberately managed to produce seedlings or ramets better suited to the light environments they will face in the field. Conversely, the finding that a demethylation agent can erase these primed responses underscores how sensitive such epigenetic legacies may be to chemical and environmental perturbation, with consequences for both agricultural practice and the conservation of wild clonal populations.

The authors acknowledge that further molecular evidence is required to verify the causal role of DNA methylation, and future work will likely involve genome-wide methylation profiling of parent and offspring ramets to identify the specific loci whose methylation states change in response to UV-B and correlate with the observed growth strategies. Such studies would also reveal whether the methylation marks are targeted at genes involved in UV-B signaling, photosynthesis, stolon development, or broader regulatory networks. For now, the study stands as an elegant demonstration that the boundary between generations is more permeable than classical genetics suggests, and that plants may carry within their genomes a chemical record of the sunlight their parents endured. In a world where radiation regimes, canopy structures, and climate patterns are all shifting, that record may prove to be one of the most valuable inheritances a plant can receive.

Subject of Research: Transgenerational parental effects of UV-B radiation mediated by DNA methylation in the clonal plant Glechoma longituba

Article Title: Parental UV-B experience implicates DNA methylation in divergent offspring growth strategies under heterogeneous UV-B patterns in a clonal plant

Article References: Quan, J., Zhou, X., Zhang, S., Hu, D., Yang, Y., Liu, X., & Yue, M. (2026). Parental UV-B experience implicates DNA methylation in divergent offspring growth strategies under heterogeneous UV-B patterns in a clonal plant. BMC Plant Biology. https://doi.org/10.1186/s12870-026-10006-w

Image Credits: AI Generated

DOI: 10.1186/s12870-026-10006-w

Keywords: UV-B radiation, parental effects, DNA methylation, epigenetics, clonal plants, Glechoma longituba, 5-azacytidine, environmental heterogeneity, phenotypic plasticity, transgenerational memory, plant biology, stolons

Cite Scienmag News
APA MLA Chicago

Gavin Prescott. (September 30, 2026). Plants Remember the Sun: Parental UV-B Exposure Shapes Offspring Growth Through DNA Methylation. Scienmag. https://scienmag.com/plants-remember-the-sun-parental-uv-b-exposure-shapes-offspring-growth-through-dna-methylation/

Gavin Prescott. “Plants Remember the Sun: Parental UV-B Exposure Shapes Offspring Growth Through DNA Methylation.” Scienmag, 30 September 2026, https://scienmag.com/plants-remember-the-sun-parental-uv-b-exposure-shapes-offspring-growth-through-dna-methylation/. Accessed 30 September 2026.

Gavin Prescott. “Plants Remember the Sun: Parental UV-B Exposure Shapes Offspring Growth Through DNA Methylation.” Scienmag. September 30, 2026. https://scienmag.com/plants-remember-the-sun-parental-uv-b-exposure-shapes-offspring-growth-through-dna-methylation/

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Tags: 5-azacytidineclonal plantsDNA MethylationDNA methylation in plant adaptationenvironmental heterogeneityenvironmental heterogeneity and plant growthepigenetic mechanisms in plant evolutionepigenetic memory in clonal plantsepigeneticsGlechoma longitubaimpact of UV radiation on plant DNAinheritance of stress responses in plantsparental effectsparental environmental influence on offspringphenotypic plasticityplant biologyplant epigeneticsplant resilience to UV stressstolonstransgenerational inheritance in plantstransgenerational memoryUV-B exposure and plant epigenomeUV-B radiationUV-B radiation effects on plants

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