Research

Picture of a person waring a white t-shirt standing before some tree backgroundPhoto: Rahul Puthan Valappil

 Imagine cutting a plant, and instead of simply healing, it can rebuild what was lost. Remarkably, a small piece of plant tissue can sometimes give rise to new roots, shoots, or even an entire new plant. This extraordinary ability, known as regeneration, is fundamental to plant propagation and biotechnology. Yet many plants remain surprisingly difficult to regenerate. Our lab investigates what enables plant cells to regenerate and how environmental conditions shape their regenerative decisions.

Plants are sessile organisms that cannot escape from their environment. Throughout their lives, they face a wide range of challenges, including attacks by pathogens and herbivores, and injuries caused by wind, temperature extremes, or physical cutting. Yet, plants possess an extraordinary ability to repair damaged tissues and regenerate lost organs. Remarkably, plants can regenerate new organs, embryos, and even entire individuals from differentiated somatic cells. This exceptional regenerative capacity underpins many important applications in horticulture, agriculture, and biotechnology, from clonal propagation through stem cuttings and large-scale plant production using tissue culture and somatic embryogenesis to genetic transformation and genome editing.

Despite its enormous potential, regeneration remains inefficient in many economically important plant species, including major crops and forest trees. Understanding why some cells and species readily regenerate while others do not is therefore essential for developing improved strategies for plant propagation, breeding, and biotechnology. Plant regeneration is also a fascinating biological process in its own right. Because regeneration requires cells to re-enter the cell cycle, change their identity, communicate with neighbouring cells, and ultimately self-organize into new tissues and organs, it provides a powerful system for understanding fundamental principles of plant development and cellular plasticity.

Our lab investigates the molecular and environmental mechanisms that control plant regeneration, with a particular focus on wound-induced regeneration and somatic embryogenesis. We use cutting-edge tools in molecular genetics, genomics, and high-resolution cellular imaging to study regeneration at cellular and molecular levels. Our long-term goal is to uncover the fundamental principles that enable plant cells to regenerate and to translate this knowledge into new strategies for improving plant propagation, and agricultural biotechnology.


A red-coloured map of Australia with black dots appearingWound-induced callus formation in the Arabidopsis leaf petiole expressing a yellow fluorescent protein-tagged auxin-responsive reporter (intensity-based colouring). Image by Abdul Kareem

Key publications

  •  Kareem A*, Wüllen AV, Zhang A, Walckiers G, Fasth E, Melnyk CW* Water availability positions auxin response maxima to determine plant regeneration fates. Nature Plants (2025) 11, 1367–1379. https://doi.org/10.1038/s41477-025-02029-2 (*joint corresponding authors)
  •  Kareem A, Ohno C, Heisler MG. TMO5 regulates PIN1 polarity convergence and organogenesis downstream of MONOPTEROS in the Arabidopsis shoot. Development (2025) 152 (24): dev205255. https://doi.org/10.1242/dev.205255
  • Varapparambath V, Mathew MM, Shanmukhan AP, Radhakrishnan D, Kareem A, Verma S, et al. Mechanical conflict caused by a cell-wall-loosening enzyme activates de novo shoot regeneration. Developmental Cell. 2022 Sep 12;57(17):2063-2080.e10. https://doi.org/10.1016/j.devcel.2022.07.017.
  • Zhang A, Matsuoka K, Kareem A, Robert M, Roszak P, Blob B, Bisht A, De Veylder L, Voiniciuc C, Asahina M, Melnyk CW, Cell-wall damage activates DOF transcription factors to promote wound healing and tissue regeneration in Arabidopsis thaliana, Current Biology, 2022, 32(9):1883-1894.e7. https://doi.org/10.1016/j.cub.2022.02.069.
  • #Radhakrishnan D, #Shanmukhan AP, #Kareem A, #Aiyaz M, Varapparambathu V, Toms A, et al., A coherent feed-forward loop drives vascular regeneration in damaged aerial organs growing in normal developmental-context, Development, 2020, pp. dev.185710, doi:10.1242/dev.185710. #joint first author.
  • Durgaprasad K, Roy MV, Venugopal M A, Kareem A, Raj K, Willemsen V, Mähönen AP, Scheres B, Prasad K, Gradient Expression of Transcription Factor Imposes a Boundary on Organ Regeneration Potential in Plants, Cell Reports, 2019, vol. 29, no. 2, pp. 453– 463.e3, doi:10.1016/j.celrep.2019.08.099
  • Kareem A, Durgaprasad K, Sugimoto K, Du Y, Pulianmackal AJ, Trivedi ZB, Abhayadev PV, Pinon V, Meyerowitz EM, Scheres B, Prasad K. PLETHORA Genes Control Regeneration by a Two-Step Mechanism, Current Biology, 2015, vol. 25, no. 8, pp. 1017–1030, doi:10.1016/j.cub.2015.02.022. Cover article