TY - JOUR A1 - Rusconi, Marco A1 - Valleriani, Angelo A1 - Dunlop, John William Chapman A1 - Kurths, Jürgen A1 - Weinkamer, Richard T1 - Insights into the control of trabecular bone remodelling obtained by a Markov model Y1 - 2009 UR - http://www.sciencedirect.com/science/journal/87563282 U6 - https://doi.org/10.1016/j.bone.2009.03.467 SN - 8756-3282 ER - TY - JOUR A1 - Rusconi, Marco A1 - Valleriani, Angelo A1 - Dunlop, John William Chapman A1 - Kurths, Jürgen A1 - Weinkamer, Richard T1 - Quantitative approach to the stochastics of bone remodeling JF - epl : a letters journal exploring the frontiers of physics N2 - During life bones constantly adapt their structure to their mechanical environment via a mechanically controlled process called bone remodeling. For trabecular bone, this process modifies the thickness of each trabecula leading occasionally to full resorption. We describe the irreversible dynamics of the trabecular thickness distribution (TTD) by means of a Markov chain discrete in space and time. By using thickness data from adult patients, we derive the transition probabilities in the chain. This allows a quantification, in terms of geometrical quantities, of the control of bone remodeling and thus to determine the evolution of the TTD with age. Y1 - 2012 U6 - https://doi.org/10.1209/0295-5075/97/28009 SN - 0295-5075 VL - 97 IS - 2 PB - EDP Sciences CY - Mulhouse ER - TY - JOUR A1 - Zhao, Qiang A1 - Dunlop, John William Chapman A1 - Qiu, Xunlin A1 - Huang, Feihe A1 - Zhang, Zibin A1 - Heyda, Jan A1 - Dzubiella, Joachim A1 - Antonietti, Markus A1 - Yuan, Jiayin T1 - An instant multi-responsive porous polymer actuator driven by solvent molecule sorption JF - Nature Communications N2 - Fast actuation speed, large-shape deformation and robust responsiveness are critical to synthetic soft actuators. A simultaneous optimization of all these aspects without trade-offs remains unresolved. Here we describe porous polymer actuators that bend in response to acetone vapour (24 kPa, 20 degrees C) at a speed of an order of magnitude faster than the state-of-the-art, coupled with a large-scale locomotion. They are meanwhile multi-responsive towards a variety of organic vapours in both the dry and wet states, thus distinctive from the traditional gel actuation systems that become inactive when dried. The actuator is easy-to-make and survives even after hydrothermal processing (200 degrees C, 24 h) and pressing-pressure (100 MPa) treatments. In addition, the beneficial responsiveness is transferable, being able to turn 'inert' objects into actuators through surface coating. This advanced actuator arises from the unique combination of porous morphology, gradient structure and the interaction between solvent molecules and actuator materials. Y1 - 2014 U6 - https://doi.org/10.1038/ncomms5293 SN - 2041-1723 VL - 5 PB - Nature Publ. Group CY - London ER - TY - THES A1 - Dunlop, John William Chapman T1 - The physics of shape changes in biology T1 - Die Physik von Formveränderungen in der Biologie N2 - Biological materials, in addition to having remarkable physical properties, can also change shape and volume. These shape and volume changes allow organisms to form new tissue during growth and morphogenesis, as well as to repair and remodel old tissues. In addition shape or volume changes in an existing tissue can lead to useful motion or force generation (actuation) that may even still function in the dead organism, such as in the well known example of the hygroscopic opening or closing behaviour of the pine cone. Both growth and actuation of tissues are mediated, in addition to biochemical factors, by the physical constraints of the surrounding environment and the architecture of the underlying tissue. This habilitation thesis describes biophysical studies carried out over the past years on growth and swelling mediated shape changes in biological systems. These studies use a combination of theoretical and experimental tools to attempt to elucidate the physical mechanisms governing geometry controlled tissue growth and geometry constrained tissue swelling. It is hoped that in addition to helping understand fundamental processes of growth and morphogenesis, ideas stemming from such studies can also be used to design new materials for medicine and robotics. N2 - Biologische Materialien verfügen nicht nur über außergewöhnliche physikalische Eigenschaften, sie können auch ihre Form und ihr Volumen verändern. Ermöglicht werden diese Anpassungen während der Morphogenese und des Wachstums sowohl durch die Bildung neuer Gewebe, als auch die Umformung und/oder Reparatur alter Gewebe. Zusätzlich führen Form? oder Volumenänderungen in Geweben häufig zur Generierung von Kräften (Aktuation) und daraus resultierenden Bewegungen. Ein bekanntes Beispiel dafür ist der feuchtigkeitsgetriebene Öffnungs? und Schließmechanismus der Schuppen von Kiefernzapfen, die ausschließlich aus totem Gewebe ohne aktiven Metabolismus bestehen. Bestimmend für Wachstum und Aktuation sind dabei nicht nur biochemische Faktoren sondern auch physikalische Randbedingung definiert durch die Umgebung und die Gewebearchitektur. Die vorliegende Habilitationsschrift basiert auf biophysikalischen Arbeiten der Gruppe „Biomimetic Actuation and Tissue Growth“ zu wachstums? und quellungsbedingten Formänderungen biologischer Systeme. Physikalische Mechanismen von Gewebewachstum und Quellprozessen unter dem kontrollierenden Einfluss von geometrischen Randbedingungen werden mit theoretischen und experimentellen Methoden untersucht und erklärt. Die gewonnenen Ergebnisse tragen nicht nur zum Verständnis grundlegender Wachstums? und Morphogeneseprozesse bei, sie könnten zukünftig auch für die Entwicklung neuer Materialien für die Medizin und Robotik von Nutzen sein. KW - tissue growth KW - actuation KW - swelling KW - biomechanics KW - biophysics KW - Biomechanik KW - Aktuation KW - Gewebewachstum KW - Biophysik KW - Morphogenese Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-96554 ER -