{"id":15,"date":"2019-09-18T08:53:17","date_gmt":"2019-09-18T08:53:17","guid":{"rendered":"https:\/\/www.embl.org\/groups\/diz-munoz\/?page_id=15"},"modified":"2026-01-07T14:38:47","modified_gmt":"2026-01-07T14:38:47","slug":"home","status":"publish","type":"page","link":"https:\/\/www.embl.org\/groups\/diz-munoz\/","title":{"rendered":"Home"},"content":{"rendered":"<div class=\"vf-grid vf-grid__col-3 | vf-u-margin__bottom--800\">\n      <div class=\"vf-grid__col--span-2\">\n      <div class=\"vf-content-hub-html\">\n  <!-- Generated by: http:\/\/content.embl.org\/api\/v1\/pattern.html?filter-content-type=profiles&amp;filter-uuid=121be34d-dc2b-49fb-8b15-0745ad7211a0&amp;pattern=node-teaser -->\n      <div data-embl-js-conditional-edit=\"9301\">\n              <h1 class=\"vf-lede\">The Diz-Mu\u00f1oz lab studies how mechanics at the cell periphery govern function, with a focus on morphogenesis, migration, and fate in animal cells.<\/p>\r\n\n            <a class=\"vf-text vf-text--body-r vf-link embl-conditional-edit\" rel=\"noopener noreferrer nofollow\" href=\"\/node\/9301\" target=\"_blank\">Edit<\/a>\n    <\/div>\n  <\/div>\n    <\/div>\n      <div >\n\n<!-- <style>\n  .vf-content-hub-html {\n    --vf-stack-margin--custom: unset !important;\n  }\n<\/style> -->\n\n    <div class=\"vf-content-hub-html\" data-cache=\"a554d93b\">\n      <!-- Generated by: http:\/\/content.embl.org\/api\/v1\/pattern.html?filter-content-type=person&amp;filter-field-contains%5Bfield_person_full_name%5D=alba%20diz&amp;filter-ref-entity%5Bfield_person_positions%5D%5Btitle%5D=&amp;hide%5Borcid%2Cmobile%2Cphones%2Cemail%5D=1&amp;limit=1&amp;pattern=vf-profile-inline -->\n                \n                            <article class=\"vf-profile vf-profile--very-easy vf-profile--medium vf-profile--inline\" data-embl-js-conditional-edit=\"86242\">\n              <img decoding=\"async\" class=\"vf-profile__image\" src=\"https:\/\/content.embl.org\/\/sites\/default\/files\/styles\/medium\/public\/persons\/CP-60023118.jpg?itok=qe_BcT7a\" alt=\"image of Alba Diz-Mu\u00f1oz\" \/>\n      \n              <h3 class=\"vf-profile__title\">\n                      <a href=\"https:\/\/www.embl.org\/people\/person\/alba-dizmunoz\" class=\"vf-profile__link\">Alba Diz-Mu\u00f1oz<\/a>\n                  <\/h3>\n      \n              <p class=\"vf-profile__job-title\">\n          Interim Head of Unit for CBB\n        <\/p>\n      \n              <p class=\"vf-profile__text\">\n          Diz-Mu\u00f1oz Group\n        <\/p>\n      \n      \n      \n      \n      \n            <a class=\"vf-text vf-text--body-r vf-link embl-conditional-edit\" rel=\"noopener noreferrer nofollow\" href=\"\/node\/86242\/86242\" target=\"_blank\">\n        Edit\n      <\/a>\n    <\/article>\n  <\/div>\n\n  <\/div>\n<\/div>\n\n\n\n<div class=\"vf-grid | vf-grid__col-3\"><div class=\"vf-grid__col--span-2\"><!--[vf\/content]-->\n<div class=\"vf-content\">\n\n<h3 class=\"wp-block-heading\">More than the sum: How does a composite interface govern function?<\/h3>\n\n\n\n<p>Despite being composed of a limited number of building blocks, biological materials exhibit a remarkable diversity of structures and purposes. For instance, keratin makes both tough structures like bird beaks and nails, and soft materials like sheep wool. To generate this multeity of shapes and functions nature often layers components. When subjected to external forces, the differential mechanics within a composite interface can drive morphogenesis at a broad range of length scales.<\/p>\n\n\n\n<p>In animal cells, the cell surface is a composite interface, comprising the plasma membrane, the underlying cortical cytoskeleton, and the \u2018glue\u2019 that binds them together \u2014 the membrane-to-cortex attachment (MCA). The resulting cell mechanics is not just the sum of these various components, as these layers are mechanically coupled in non-intuitive ways. Furthermore, cells do not exist in isolation within organisms; feedback mechanisms also exist with neighbouring cells and the extracellular matrix.<\/p>\n\n\n\n<p>We are only beginning to understand the logic of how different cell surface mechanics crosstalk to control form and function. Current approaches to measure and manipulate forces have important limitations, highlighting the need for and new tools and techniques. Our lab works towards deciphering the molecular and mechanical principles underlying complex behaviours such as cell migration and differentiation. We study cellular force transduction in an unprecedented and innovative manner by combining multidisciplinary approaches and developing creative experimental tools to measure and control cellular forces at the cell periphery. Moreover, our multiscale approaches feed theoretical frameworks to decipher how a composite interface gives rise to complex behaviours.<\/p>\n\n\n\n<p><\/p>\n\n\n\n<h3 class=\"wp-block-heading\">Previous and current research<\/h3>\n\n\n\n<p>The lack of specific tools that modify particular physical properties and bridge molecular-to-cellular scale biophysics prevent us from understanding how cells use their mechanics to govern function. Combining an engineered mechanical membrane-to-cortex linker with atomic force spectroscopy measurements of membrane mechanics allowed us to show that tethering the plasma membrane to the cortical cytoskeleton controls the exit from na\u00efve pluripotency in embryonic stem cells (<a href=\"http:\/\/europepmc.org\/abstract\/MED\/33207217\" target=\"_blank\" rel=\"noreferrer noopener\">Bergert&nbsp;et al.,&nbsp;2021<\/a>). In a study currently on the bioRxiv, we combined&nbsp;<em>in silico<\/em>,&nbsp;<em>in vitro<\/em>, and&nbsp;<em>in cellula<\/em>&nbsp;work to identify a novel mechanism for cell surface symmetry breaking controlled by the length of membrane-to-cortex linker proteins and membrane fluidity (<a href=\"https:\/\/www.biorxiv.org\/content\/10.1101\/2024.10.14.618153v1\" data-type=\"link\" data-id=\"https:\/\/www.biorxiv.org\/content\/10.1101\/2024.10.14.618153v1\">Dar et al., 2024<\/a>&nbsp;). Finally, in a recent preprint, we for the first-time link cellular mechanics to the molecular structure of the cytoskeleton, as revealed by&nbsp;<em>in situ<\/em>&nbsp;cryo-electron tomography. This allowed us to identify a novel and unexpected mechanism for the control of cell mechanics: the regulation of the nanoscale distance between the plasma membrane and the actomyosin cortex (<a href=\"https:\/\/www.biorxiv.org\/content\/10.1101\/2023.01.31.526409v1\" target=\"_blank\" rel=\"noreferrer noopener\">Lembo, Strauss, et al., 2023<\/a>).<\/p>\n\n\n\n<p>The mechanical feedbacks at the cell periphery give rise to an incredibly diverse topography at the surface of animal cells, which in turn also encodes key information for processes like cell motility. In a study&nbsp;aimed at understanding how plasma membrane curvature controls motility, we show that a cell\u2019s persistence and directionality strongly depend on the activity of Snx33, a BAR domain&nbsp;protein <a>(<\/a><a href=\"https:\/\/www.nature.com\/articles\/s41467-023-41173-1\">Sitarska et al., 2023<\/a>).<\/p>\n\n\n\n<p>The environment that surrounds a cell is key for development, physiology, and pathology. A cell, its neighbours and the extracellular matrix can also be seen as a composite interface. On that front, we have taken advantage of the imaging possibilities in the zebrafish embryo to reveal how gene expression patterns result in the generation of different cell types (<a href=\"http:\/\/europepmc.org\/article\/MED\/35658971\" target=\"_blank\" rel=\"noreferrer noopener\">Sanchez-Iranzo et al., 2022<\/a>), and probed the lipid metabolic landscape of developing neurons&nbsp;<a>(<\/a><a href=\"https:\/\/europepmc.org\/article\/MED\/38418090\" target=\"_blank\" rel=\"noreferrer noopener\">Gopalan et al., 2024<\/a>).&nbsp;Also, through interdisciplinary collaborations, we have shown how fibroblast-induced matrix stiffening influences prognosis and therapy in colorectal cancer (<a href=\"http:\/\/europepmc.org\/abstract\/MED\/32516590\" target=\"_blank\" rel=\"noreferrer noopener\">Shen&nbsp;et al., 2020a<\/a>&nbsp;and&nbsp;<a href=\"http:\/\/europepmc.org\/article\/MED\/33377061\" target=\"_blank\" rel=\"noreferrer noopener\">2020b<\/a>). This surprising discovery highlighted that (i) currently used drugs have unknown mechanical effects worth exploiting therapeutically and (ii) modulating the mechanical microenvironment of tumour cells can significantly improve therapeutic regimens. Lastly, together with the Prevedel lab, we have significantly advanced Brillouin microscopy to observe extracellular matrix mechanics in tissues&nbsp;<em>in vivo<\/em>&nbsp;(<a href=\"https:\/\/europepmc.org\/article\/MED\/30891356\" target=\"_blank\" rel=\"noreferrer noopener\">Bevilacqua et al., 2019<\/a>,&nbsp;<a href=\"https:\/\/europepmc.org\/article\/MED\/32274409\" target=\"_blank\" rel=\"noreferrer noopener\">Sanchez-Iranzo et al., 2020<\/a>,&nbsp;<a href=\"https:\/\/www.nature.com\/articles\/s41592-023-01822-1\">Bevilacqua et al., 2023<\/a>).<\/p>\n\n\n\n<p>Together, our work provides new insights into how cells couple physical forces and material properties to drive essential processes, underscoring the importance of exploring the role of composite interfaces in development, physiology, and pathology. In our future work, we will build on these exciting results and expand our toolkit to mechanically program the cell surface.<\/p>\n\n\n\n<p><\/p>\n\n\n\n<h3 class=\"wp-block-heading\">Future projects and goals<\/h3>\n\n\n\n<p>We will continue to use&nbsp;<em>in situ<\/em>&nbsp;cryo-electron tomography and atomic force microscopy to determine the structure-function relationship at the cellular periphery in space and time. Moreover, we will leverage state-of-the-art light and electron microscopy, combined with novel optogenetic tools, to further explore how the topography of the plasma membrane is used for cell migration and membrane trafficking. Furthermore, we will adopt an unbiased multi-omics approach to decipher the origins of tissue elasticity and its effects on immune cell migration. Lastly, our work will continue to provide the quantitative data needed to build theoretical models and ultimately decipher the physical principles underlying morphogenesis and differentiation.<\/p>\n\n<\/div>\n<\/div>\n\n\n<div><!--[vf\/content]-->\n<div class=\"vf-content\">\n\n<figure class=\"vf-figure wp-block-image  | vf-figure--align vf-figure--align-centered  size-medium is-resized is-style-default\"><a href=\"https:\/\/erc.europa.eu\/homepage\"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"300\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2024\/04\/European_Research_Council_logo.svg_-300x300.png\" alt=\"\" class=\"wp-image-12407\" style=\"width:121px;height:auto\"\/><\/a><figcaption class=\"vf-figure__caption\"><a href=\"https:\/\/erc.europa.eu\/homepage\">ERC Investigator<\/a><\/figcaption><\/figure>\n\n\n\n<div style=\"height:11px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<figure class=\"vf-figure wp-block-image size-large is-resized\"><img loading=\"lazy\" decoding=\"async\" width=\"1024\" height=\"1024\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-1024x1024.png\" alt=\"\" class=\"wp-image-22985\" style=\"width:370px;height:auto\" srcset=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-1024x1024.png 1024w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-300x300.png 300w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-150x150.png 150w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-768x768.png 768w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-1536x1536.png 1536w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2026\/01\/LabLogo_2025_v1_bright-2048x2048.png 2048w\" sizes=\"auto, (max-width: 1024px) 100vw, 1024px\" \/><\/figure>\n\n\n\n<div style=\"height:14px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<figure class=\"vf-figure wp-block-image size-large\"><img loading=\"lazy\" decoding=\"async\" width=\"1024\" height=\"704\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/CellSurface-02-1024x704.png\" alt=\"\" class=\"wp-image-5264\" srcset=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/CellSurface-02-1024x704.png 1024w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/CellSurface-02-300x206.png 300w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/CellSurface-02-768x528.png 768w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/CellSurface-02.png 1046w\" sizes=\"auto, (max-width: 1024px) 100vw, 1024px\" \/><figcaption class=\"vf-figure__caption\">Schematic of the animal cell surface with F-actin (green), membrane (purple) and linker proteins (orange and grey). Illustration by Anusha Gopalan.<\/figcaption><\/figure>\n\n\n\n<div style=\"height:17px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<figure class=\"vf-figure wp-block-image  | vf-figure--align vf-figure--align-centered  size-medium is-style-default\"><a href=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2020\/11\/Fig1_website.png\"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"300\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2020\/11\/Fig1_website-300x300.png\" alt=\"Figure 1: SEM image of a differentiating mouse embryonic stem cell, illustrating its highly variable surface topology.\" class=\"wp-image-293\" srcset=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2020\/11\/Fig1_website-300x300.png 300w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2020\/11\/Fig1_website-150x150.png 150w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2020\/11\/Fig1_website.png 600w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/a><figcaption class=\"vf-figure__caption\">SEM image of a differentiating mouse embryonic stem cell, illustrating its highly variable surface topology.<\/figcaption><\/figure>\n\n\n\n<div style=\"height:12px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n\n\n<figure class=\"vf-figure wp-block-image size-full is-resized is-style-default\"><img loading=\"lazy\" decoding=\"async\" width=\"705\" height=\"819\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/iMClinker-04.png\" alt=\"\" class=\"wp-image-5254\" style=\"width:519px;height:auto\" srcset=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/iMClinker-04.png 705w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2023\/02\/iMClinker-04-258x300.png 258w\" sizes=\"auto, (max-width: 705px) 100vw, 705px\" \/><figcaption class=\"vf-figure__caption\">Recently developed iMC-linker, that allows to systematic perturbation of membrane-to-cortex-attachment in living cells (<a rel=\"noreferrer noopener\" href=\"http:\/\/europepmc.org\/abstract\/MED\/33207217\" target=\"_blank\">Bergert&nbsp;<em>et al<\/em>.,&nbsp;2021<\/a>).<\/figcaption><\/figure>\n\n\n\n<div style=\"height:40px\" aria-hidden=\"true\" class=\"wp-block-spacer\"><\/div>\n\n<\/div>\n<\/div>\n<\/div>\n\n\n\n<figure class=\"vf-figure wp-block-image size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"850\" height=\"561\" class=\"vf-figure__image\" src=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2025\/10\/Screenshot-2025-10-28-at-15.27.54.png\" alt=\"\" class=\"wp-image-21777\" srcset=\"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2025\/10\/Screenshot-2025-10-28-at-15.27.54.png 850w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2025\/10\/Screenshot-2025-10-28-at-15.27.54-300x198.png 300w, https:\/\/www.embl.org\/groups\/diz-munoz\/wp-content\/uploads\/2025\/10\/Screenshot-2025-10-28-at-15.27.54-768x507.png 768w\" sizes=\"auto, (max-width: 850px) 100vw, 850px\" \/><figcaption class=\"vf-figure__caption\">&#8211; Lab October 2025 &#8211; <\/figcaption><\/figure>\n","protected":false},"excerpt":{"rendered":"","protected":false},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"footnotes":""},"embl_taxonomy":[],"class_list":["post-15","page","type-page","status-publish","hentry"],"acf":[],"embl_taxonomy_terms":[],"_links":{"self":[{"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/pages\/15","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/comments?post=15"}],"version-history":[{"count":65,"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/pages\/15\/revisions"}],"predecessor-version":[{"id":22991,"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/pages\/15\/revisions\/22991"}],"wp:attachment":[{"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/media?parent=15"}],"wp:term":[{"taxonomy":"embl_taxonomy","embeddable":true,"href":"https:\/\/www.embl.org\/groups\/diz-munoz\/wp-json\/wp\/v2\/embl_taxonomy?post=15"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}