ABSTRACT Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which causes their shape and organization to adapt to constraints imposed by the cell geometry. We test the reciprocal role of elasticity and confinement in the organization of growing microtubules in a confining box-like geometry, in the absence of other (active) microtubule orga-nizing processes. This is inspired, for example, by the cortical microtubule array of elongating plant cells, where microtubules are typically organized in an aligned array transverse to the cell elongation axis. The method we adopt is a combination of analytical calculations, in which the polymers are modeled as inextensible filaments with bending elasticity confine...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
The self-organization of ordered cortical microtubule arrays plays an important role in the developm...
<div><p>Many cell functions rely on the ability of microtubules to self-organize as complex networks...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
AbstractMicrotubules or microtubule bundles in cells often grow longer than the size of the cell, wh...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
AbstractMicrotubules or microtubule bundles in cells often grow longer than the size of the cell, wh...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
The self-organization of ordered cortical microtubule arrays plays an important role in the developm...
<div><p>Many cell functions rely on the ability of microtubules to self-organize as complex networks...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
AbstractMicrotubules or microtubule bundles in cells often grow longer than the size of the cell, wh...
Microtubules or microtubule bundles in cells often grow longer than the size of the cell, which caus...
AbstractMicrotubules or microtubule bundles in cells often grow longer than the size of the cell, wh...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
Many cell functions rely on the ability of microtubules to self-organize as complex networks. In pla...
International audienceMany cell functions rely on the ability of microtubules to self-organize as co...
The self-organization of ordered cortical microtubule arrays plays an important role in the developm...
<div><p>Many cell functions rely on the ability of microtubules to self-organize as complex networks...