Advancing mechanobiology from single molecules to advanced mobile techniques


  • Ingber, D. E. Mechanobiology and illnesses of mechanotransduction. Ann. Med. 35, 564–577 (2003).

    Article 
    PubMed 

    Google Scholar
     

  • Hannezo, E. & Heisenberg, C. P. Mechanochemical suggestions loops in improvement and illness. Cell 178, 12–25 (2019).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • van Helvert, S., Storm, C. & Friedl, P. Mechanoreciprocity in cell migration. Nat. Cell Biol. 20, 8–20 (2018).

    Article 
    PubMed 

    Google Scholar
     

  • Roca-Cusachs, P., Conte, V. & Trepat, X. Quantifying forces in cell biology. Nat. Cell Biol. 19, 742–751 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Stewart, M. P. et al. Hydrostatic strain and the actomyosin cortex drive mitotic cell rounding. Nature 469, 226–230 (2011).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Garcia-Arcos, J. M., Jha, A., Waterman, C. M. & Piel, M. Blebology: ideas of bleb-based migration. Traits Cell Biol. 34, 838–853 (2024).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Sanfeliu-Cerdan, N. et al. A MEC-2/stomatin condensate liquid-to-solid section transition controls neuronal mechanotransduction throughout contact sensing. Nat. Cell Biol. 25, 1590–1599 (2023).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Koser, D. E. et al. Mechanosensing is essential for axon development within the creating mind. Nat. Neurosci. 19, 1592–1598 (2016). This seminal paper describes a transparent operate of mechanosensing within the central nervous system in vivo.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Llinares-Benadero, C. & Borrell, V. Deconstructing cortical folding: genetic, mobile and mechanical determinants. Nat. Rev. Neurosci. 20, 161–176 (2019).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Chaudhuri, O., Cooper-White, J., Janmey, P. A., Mooney, D. J. & Shenoy, V. B. Results of extracellular matrix viscoelasticity on mobile behaviour. Nature 584, 535–546 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Lomakin, A. J. et al. The nucleus acts as a ruler tailoring cell responses to spatial constraints. Science 370, eaba2894 (2020). This paper describes a novel mechanosensory position of the nucleus in measuring mobile constraints.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Mao, Y. & Wickstrom, S. A. Mechanical state transitions within the regulation of tissue type and performance. Nat. Rev. Mol. Cell Biol. 25, 654–670 (2024).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Tyler, W. J. The mechanobiology of mind operate. Nat. Rev. Neurosci. 13, 867–878 (2012).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Ladoux, B. & Mege, R. M. Mechanobiology of collective cell behaviours. Nat. Rev. Mol. Cell Biol. 18, 743–757 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Hofer, M. & Lutolf, M. P. Engineering organoids. Nat. Rev. Mater. 6, 402–420 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Karzbrun, E. et al. Human neural tube morphogenesis in vitro by geometric constraints. Nature 599, 268–272 (2021). The authors set up the position of mechanical constraints within the formation of advanced neural organoids.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Wu, P. H. et al. A comparability of strategies to evaluate cell mechanical properties. Nat. Strategies 15, 491–498 (2018).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Vianello, S. & Lutolf, M. P. Understanding the mechanobiology of early mammalian improvement by bioengineered fashions. Dev. Cell 48, 751–763 (2019).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Mittelheisser, V. et al. Proof and therapeutic implications of biomechanically regulated immunosurveillance in most cancers and different illnesses. Nat. Nanotechnol. 19, 281–297 (2024).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Krieg, M. et al. Atomic power microscopy-based mechanobiology. Nat. Rev. Phys. 1, 41–57 (2019).

    Article 

    Google Scholar
     

  • Neuman, Ok. C. & Nagy, A. Single-molecule power spectroscopy: optical tweezers, magnetic tweezers and atomic power microscopy. Nat. Strategies 5, 491–505 (2008).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Catala-Castro, F., Schaffer, E. & Krieg, M. Exploring cell and tissue mechanics with optical tweezers. J. Cell Sci. 136, jcs261843 (2022).

    Article 

    Google Scholar
     

  • Fischer-Friedrich, E., Hyman, A. A., Julicher, F., Muller, D. J. & Helenius, J. Quantification of floor rigidity and inner strain generated by single mitotic cells. Sci. Rep. 4, 6213 (2014).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Tambe, D. T. et al. Collective cell steering by cooperative intercellular forces. Nat. Mater. 10, 469–475 (2011).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Gavara, N. & Chadwick, R. S. Dedication of the elastic moduli of skinny samples and adherent cells utilizing conical atomic power microscope suggestions. Nat. Nanotechnol. 7, 733–736 (2012).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Roffay, C., Chan, C. J., Guirao, B., Hiiragi, T. & Graner, F. Inferring cell junction rigidity and strain from cell geometry. Improvement 148, dev192773 (2021).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Venkova, L. et al. A mechano-osmotic suggestions {couples} cell quantity to the speed of cell deformation. eLife 11, e72381 (2022).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Ichbiah, S., Delbary, F., McDougall, A., Dumollard, R. & Turlier, H. Embryo mechanics cartography: inference of 3D power atlases from fluorescence microscopy. Nat. Strategies 20, 1989–1999 (2023).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Runser, S., Vetter, R. & Iber, D. SimuCell3D: three-dimensional simulation of tissue mechanics with cell polarization. Nat. Comput. Sci. 4, 299–309 (2024). This paper introduces a complicated multiparametric computational mannequin that allows large-scale, high-resolution simulations of 3D tissue group and mechanics.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Schillers, H. et al. Standardized nanomechanical atomic power microscopy process (SNAP) for measuring smooth and organic samples. Sci. Rep. 7, 5117 (2017).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Kollmannsberger, P. & Fabry, B. Linear and nonlinear rheology of residing cells. Ann. Rev. Mater. Res. 41, 75–97 (2011).

    Article 
    CAS 

    Google Scholar
     

  • Rigato, A., Miyagi, A., Scheuring, S. & Rico, F. Excessive-frequency microrheology reveals cytoskeleton dynamics in residing cells. Nat. Phys. 13, 771–775 (2017).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Flaschner, G., Roman, C. I., Strohmeyer, N., Martinez-Martin, D. & Muller, D. J. Rheology of rounded mammalian cells over steady high-frequencies. Nat. Commun. 12, 2922 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Moeendarbary, E. et al. The cytoplasm of residing cells behaves as a poroelastic materials. Nat. Mater. 12, 253–261 (2013).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Bera, Ok. et al. Extracellular fluid viscosity enhances cell migration and most cancers dissemination. Nature 611, 365–373 (2022).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Amitrano, A. et al. Extracellular fluid viscosity regulates human mesenchymal stem cell lineage and performance. Sci. Adv. 11, eadr5023 (2025).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Katta, S., Krieg, M. & Goodman, M. B. Feeling power: bodily and physiological ideas enabling sensory mechanotransduction. Annu. Rev. Cell Dev. Biol. 31, 347–371 (2015).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Handler, A. & Ginty, D. D. The mechanosensory neurons of contact and their mechanisms of activation. Nat. Rev. Neurosci. 22, 521–537 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Kasuba, Ok. C. et al. Mechanical stimulation and electrophysiological monitoring at subcellular decision reveals differential mechanosensation of neurons inside networks. Nat. Nanotechnol. 19, 825–833 (2024). An built-in multimodal strategy allows simultaneous mechanical stimulation and electrophysiological recording of neurons.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Catala-Castro, F. et al. Measuring age-dependent viscoelasticity of organelles, cells and organisms with time-shared optical tweezer microrheology. Nat. Nanotechnol. 20, 411–420 (2025). Time-shared optical tweezer microrheology allows wide-range mechanical mapping of cells and condensates, with functions in ageing and drug screening.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Lukonin, I. et al. Phenotypic panorama of intestinal organoid regeneration. Nature 586, 275–280 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Gjorevski, N. et al. Tissue geometry drives deterministic organoid patterning. Science 375, eaaw9021 (2022). This paper describes how mechanical patterning can standardize and enhance the reproducibility of organoid improvement.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Engler, A. J., Sen, S., Sweeney, H. L. & Discher, D. E. Matrix elasticity directs stem cell lineage specification. Cell 126, 677–689 (2006).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Barriga, E. H., Franze, Ok., Charras, G. & Mayor, R. Tissue stiffening coordinates morphogenesis by triggering collective cell migration in vivo. Nature 554, 523–527 (2018). This seminal work exhibits that tissue stiffness guides morphogenesis in vivo.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Gjorevski, N. et al. Designer matrices for intestinal stem cell and organoid tradition. Nature 539, 560–564 (2016).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Houtekamer, R. M., van der Internet, M. C., Maurice, M. M. & Gloerich, M. Mechanical forces directing intestinal type and performance. Curr. Biol. 32, R791–R805 (2022).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Nikolaev, M. et al. Homeostatic mini-intestines by scaffold-guided organoid morphogenesis. Nature 585, 574–578 (2020).

    Article 
    PubMed 

    Google Scholar
     

  • Lyu, Q. et al. A smooth and ultrasensitive power sensing diaphragm for probing cardiac organoids instantaneously and wirelessly. Nat. Commun. 13, 7259 (2022).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Poling, H. M. et al. Mechanically induced improvement and maturation of human intestinal organoids in vivo. Nat. Biomed. Eng. 2, 429–442 (2018).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Perez-Gonzalez, C. et al. Mechanical compartmentalization of the intestinal organoid allows crypt folding and collective cell migration. Nat. Cell Biol. 23, 745–757 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Jain, A. et al. Morphodynamics of human early mind organoid improvement. Nature 644, 1010–1019 (2025). This examine represents a technological milestone, enabling long-term, multi-channel imaging of human mind organoids to uncover matrix-dependent morphogenesis.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Schutgens, F. & Clevers, H. Human organoids: instruments for understanding biology and treating illnesses. Annu. Rev. Pathol. 15, 211–234 (2020).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Kim, J., Koo, B. Ok. & Knoblich, J. A. Human organoids: mannequin techniques for human biology and medication. Nat. Rev. Mol. Cell Biol. 21, 571–584 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Garreta, E. et al. Rethinking organoid know-how by bioengineering. Nat. Mater. 20, 145–155 (2021).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Wang, X. et al. Anisotropy hyperlinks cell shapes to tissue circulation throughout convergent extension. Proc. Natl Acad. Sci. USA 117, 13541–13551 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Jain, A. et al. Regionalized tissue fluidization is required for epithelial hole closure throughout insect gastrulation. Nat. Commun. 11, 5604 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Serwane, F. et al. In vivo quantification of spatially various mechanical properties in creating tissues. Nat. Strategies 14, 181–186 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Grashoff, C. et al. Measuring mechanical rigidity throughout vinculin reveals regulation of focal adhesion dynamics. Nature 466, 263–266 (2010).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Stabley, D. R., Jurchenko, C., Marshall, S. S. & Salaita, Ok. S. Visualizing mechanical rigidity throughout membrane receptors with a fluorescent sensor. Nat. Strategies 9, 64–67 (2011).

    Article 
    PubMed 

    Google Scholar
     

  • Ragaller, F. et al. Quantifying fluorescence lifetime responsiveness of environment-sensitive probes for membrane fluidity measurements. J. Phys. Chem. B 128, 2154–2167 (2024).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Casar, J. R. et al. Upconverting microgauges reveal intraluminal power dynamics in vivo. Nature 637, 76–83 (2025). This paper profoundly superior optical power sensor know-how within the infrared regime, enabling non-invasive mechanosensing.

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Fardian-Melamed, N. et al. Infrared nanosensors of piconewton to micronewton forces. Nature 637, 70–75 (2025).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Prevedel, R., Diz-Muñoz, A., Ruocco, G. & Antonacci, G. Brillouin microscopy: an rising device for mechanobiology. Nat. Strategies 16, 969–977 (2019).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Campàs, O., Noordstra, I. & Yap, A. S. Adherens junctions as molecular regulators of emergent tissue mechanics. Nat. Rev. Mol. Cell Biol. 25, 252–269 (2024).

    Article 
    PubMed 

    Google Scholar
     

  • Panciera, T., Azzolin, L., Cordenonsi, M. & Piccolo, S. Mechanobiology of YAP and TAZ in physiology and illness. Nat. Rev. Mol. Cell Biol. 18, 758–770 (2017).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Bock, C. et al. The organoid cell atlas. Nat. Biotechnol. 39, 13–17 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Wahle, P. et al. Multimodal spatiotemporal phenotyping of human retinal organoid improvement. Nat. Biotechnol. 41, 1765–1775 (2023).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Mason, J. H. et al. Debiased ambient vibrations optical coherence elastography to profile cell, organoid and tissue mechanical properties. Commun. Biol. 6, 543 (2023).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • de Medeiros, G. et al. Multiscale light-sheet organoid imaging framework. Nat. Commun. 13, 4864 (2022).

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Tomer, R., Khairy, Ok., Amat, F. & Keller, P. J. Quantitative high-speed imaging of total creating embryos with simultaneous multiview light-sheet microscopy. Nat. Strategies 9, 755–763 (2012).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Balzarotti, F. et al. Nanometer decision imaging and monitoring of fluorescent molecules with minimal photon fluxes. Science 355, 606–612 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Chen, W. et al. Reside-seq allows temporal transcriptomic recording of single cells. Nature 608, 733–740 (2022).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Otto, O. et al. Actual-time deformability cytometry: on-the-fly cell mechanical phenotyping. Nat. Strategies 12, 199–202 (2015).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Fashion, R. W. et al. Traction power microscopy in physics and biology. Delicate Matter 10, 4047–4055 (2014).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Elosegui-Artola, A. et al. Power triggers YAP nuclear entry by regulating transport throughout nuclear pores. Cell 171, 1397–1410 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Ringer, P. et al. Multiplexing molecular rigidity sensors reveals piconewton power gradient throughout talin-1. Nat. Strategies 14, 1090–1096 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Solar, X. et al. Mechanosensing by direct binding of tensed F-actin by LIM domains. Dev. Cell 55, 468–482 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Nava, M. M. et al. Heterochromatin-driven nuclear softening protects the genome towards mechanical stress-induced harm. Cell 181, 800–817 (2020).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Liu, Y. J. et al. Confinement and low adhesion induce quick amoeboid migration of sluggish mesenchymal cells. Cell 160, 659–672 (2015).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Oria, R., Jain, Ok. & Weaver, V. M. Exploring the intersection of mechanobiology and synthetic intelligence. npj Biol. Phys. Mech. 2, 9 (2025).

    Article 

    Google Scholar
     

  • Oria, R. et al. Power loading explains spatial sensing of ligands by cells. Nature 552, 219–224 (2017).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Lampart, F. L. et al. Morphometry and mechanical instability on the onset of epithelial bladder most cancers. Nat. Phys. 21, 279–288 (2025).

    Article 
    CAS 

    Google Scholar
     

  • Bell, M. Ok. & Rangamani, P. Design choices for incorporating spatial and mechanical facets in fashions of signaling networks. Curr. Opin. Syst. Biol. 25, 70–77 (2021).

    Article 
    CAS 

    Google Scholar
     

  • Procopio, A. et al. Mixed mechanistic modeling and machine-learning approaches in techniques biology – a scientific literature overview. Comput. Strategies Progr. Biomed. 240, 107681 (2023).

    Article 

    Google Scholar
     

  • Baker, R. E., Crossley, R. M., Falco, C. & Martina-Perez, S. F. Modelling collective cell migration in a data-rich age: challenges and alternatives for data-driven modelling. Chilly Spring Harb. Perspect. Biol. https://doi.org/10.1101/cshperspect.a041757 (2026)

  • Cuomo, S. et al. Scientific machine studying by physics–knowledgeable neural networks: the place we’re and what’s subsequent. J. Sci. Comput. 92, 88 (2022).

    Article 

    Google Scholar
     

  • Almanstötter, M., Vetter, M. & Iber, D. PINNverse: correct parameter estimation in differential equations from noisy knowledge with constrained physics-informed neural networks. Preprint at https://arxiv.org/abs/2504.05248 (2025).

  • Herzog, S. et al. Monitoring the mass, eigenfrequency, and high quality issue of mammalian cells. Nat. Commun. 15, 1751 (2024).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Cadoni, S. et al. Ectopic expression of a mechanosensitive channel confers spatiotemporal decision to ultrasound stimulations of neurons for visible restoration. Nat. Nanotechnol. 18, 667–676 (2023).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Choi, S. H. et al. In vivo magnetogenetics for cell-type-specific focusing on and modulation of mind circuits. Nat. Nanotechnol. 19, 1333–1343 (2024).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Kim, Y. J. et al. Magnetoelectric nanodiscs allow wi-fi transgene-free neuromodulation. Nat. Nanotechnol. 20, 121–131 (2025).

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Yang, Q. et al. Cell destiny coordinates mechano-osmotic forces in intestinal crypt formation. Nat. Cell Biol. 23, 733–744 (2021).

    Article 
    CAS 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Deixe um comentário

    O seu endereço de e-mail não será publicado. Campos obrigatórios são marcados com *