Papers
Topics
Authors
Recent
Assistant
AI Research Assistant
Well-researched responses based on relevant abstracts and paper content.
Custom Instructions Pro
Preferences or requirements that you'd like Emergent Mind to consider when generating responses.
Gemini 2.5 Flash
Gemini 2.5 Flash 189 tok/s
Gemini 2.5 Pro 46 tok/s Pro
GPT-5 Medium 35 tok/s Pro
GPT-5 High 40 tok/s Pro
GPT-4o 103 tok/s Pro
Kimi K2 207 tok/s Pro
GPT OSS 120B 451 tok/s Pro
Claude Sonnet 4.5 38 tok/s Pro
2000 character limit reached

On growth and morphogenesis in mechanobiology (2507.20345v1)

Published 27 Jul 2025 in physics.app-ph

Abstract: Morphoelasticity represents a foundational theory for tracing back growth, remodelling, and morphogenesis, yet crucial challenges persist. A unified growth law, -- independent of a priori assumptions about constitutive relations or specified structures of the growth tensor -- remains in fact elusive, as does an intimate connection between local anisotropic growth, morphogenesis dynamics, diffusion phenomena and mechanics. When anisotropy of growth is not prescribed arbitrarily, current frameworks mainly attribute shape emergence to growth-induced global configurational switches, somehow neglecting the existence of local drivers of spontaneous patterning or distorsions also in stress-free conditions. To overcome these limitations, in this work we propose a theoretical approach that reformulates anisotropic growth, remodeling, and morphogenesis starting from first principles, grounded in mass balance. In particular, by positing mass conservation as the sole dynamic constraint for the growth problem, we generalize the mass balance equation to derive evolution laws for mass distribution and geometric reconfiguration. This reveals how mass transport and associated microstructural evolution of the tissue fabric synergistically guide biological, geometric, and constitutive changes of living matter, with the isochoric component of growth orchestrating local anisotropy and, at the macroscale, even spontaneous shape development. The proposed fully coupled modelling approach integrates chemo-mechanical and biological interactions inherent to living systems, offering a pathway to investigate complex scenarios in growth and morphogenesis, redefining the latter in a Continuum Mechanics framework. It is felt that this strategy could help to take a step forward a unified perspective for biomechanical and mechanobiological problems, bridging scales from local drivers to emergent tissue forms and shapes.

Summary

We haven't generated a summary for this paper yet.

Dice Question Streamline Icon: https://streamlinehq.com

Open Problems

We haven't generated a list of open problems mentioned in this paper yet.

Lightbulb Streamline Icon: https://streamlinehq.com

Continue Learning

We haven't generated follow-up questions for this paper yet.

List To Do Tasks Checklist Streamline Icon: https://streamlinehq.com

Collections

Sign up for free to add this paper to one or more collections.

X Twitter Logo Streamline Icon: https://streamlinehq.com

Tweets

This paper has been mentioned in 1 tweet and received 0 likes.

Upgrade to Pro to view all of the tweets about this paper: