H2020Individual fellowship2020–2022

DNAGAM · DNA-guided self-organized active materials

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2020-06-01 → 2022-04-30
EU contribution
€196,708
Participants
2
Scheme
MSCA-IF-EF-CAR

Lines connect the coordinator with its partners.

Results in brief

DNA-guided self-organized active materials

Molecular programs and active matter appear as two key ingredients for the emergence of shape in living systems. The former process chemical information, while the latter generates long-range mechanical forces. The coupling of these two elements is thus essential for the synthesis of life-like materials. This knowledge is employed for the development of life-like synthetic materials. However, the chemo-mechanical coupling in vitro remains challenging. A promising route for engineering such a coupling relies on stimuli-responsive synthetic hydrogels that change their macroscopic shape through a reorganization at the molecular level. This can be achieved by external chemical cues (as in shape-shifting DNA hydrogels) or internal force-generating systems (as in active gels). In this Marie Skłodowska Curie Action (MSCA), the Fellow aimed at the preparation of a first-ever synthetic biocompatible material that can mimic natural morphogenesis. Inspired by nature, such material was planned to be prepared by coupling of two essential processes: chemical reaction to produce morphogenetic substance; and mechanical forces for the shaping of the matter. The programmable production of the morphogen can be achieved by an out-of-equilibrium DNA-based chemical network which predictably generates single-stranded DNA morphogens. Combined with diffusion, the concentrations of the morphogen can be patterned with unique spatiotemporal precision, including travelling waves and stable fronts, which were pioneered by the host group. The autonomy of morphological structuring can be accomplished by linking the mechanical activity of active gels, composed of DNA-kinesins and microtubules, to the presence of the DNA morphogen. The latter acts as a cross-linker creating the clusters of kinesins and thus guiding the self-organization of the soft material by the collective action of nanoscale kinesin motor proteins which exert force on microtubules. The formal objectives of the project are to (a) develop the mechanism of triggered activation of the motility of the active gel; (b) optimise out-of-equilibrium DNA-based reaction for the required experiment and (c) couple the production of the DNA morphogen with the microtubule/kinesin based active matter. Another goal of the project was to investigate the dependence of the concentration gradient of the kinesin motor protein on the motility of the microtubules.

Data: CORDIS, © European Union

Project objective

Programming the autonomous and multiscale structuring of shapeless synthetic soft matter is unknown and conceptually challenging. In stark contrast, a living embryo is highly ordered at all levels – from cells to the entire organism. The ordering is a multistep process, starting from the patterning of biomolecules (morphogens) which later instruct autonomous shape transformations (morphogenesis). Inspired by these natural physicochemical processes, we aim at the preparation of a first-ever synthetic biocompatible material which can be self-organized in a programmable and autonomous manner. The programming will be achieved by an out-of-equilibrium DNA-based chemical network which predictably generates single-stranded DNA morphogens. Combined with diffusion, the concentrations of the morphogen can be patterned with a unique spatiotemporal precision, including travelling waves and stable fronts, which were pioneered by the host group. The autonomy of morphological structuring will be accomplished by linking the mechanical activity of active gels, composed of DNA-kinesins and microtubules, to the presence of the DNA morphogen. Latter will act as a cross-linker creating the clusters of kinesins and thus guiding the self-organization of the soft material by the collective action of nanoscale kinesin motor proteins which exert force on microtubules. Apart from the preparation of a first biocompatible man-made morphogenetic material, we will learn how the self-organization of active gels is dependent on morphogens’ patterns. This knowledge is indispensable for the advanced programming of the precise macroscale shapes at the molecular level of chemical networks, which are diverse and modular. With further developments, our methodology could lead to so far elusive self-fabricated, force-exerting synthetic soft matter with the potential of integration in soft robotics and biological environments.

Original text from CORDIS.

Participants

  • THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom
  • SORBONNE UNIVERSITE · ParisFrance

Links

Data: CORDIS, © European Union