The availability of protein is an important factor for the determination of the size of the mitotic spindle. Involved in spindle-size regulation is kinesin-8, a molecular motor and microtubule (MT) depolymerase, which is known to tightly control MT length. Here, we propose and analyze a theoretical model in which kinesin-induced MT depolymerization competes with spontaneous polymerization while supplies of both tubulin and kinesin are limited. In contrast to previous studies where resources were unconstrained, we find that, for a wide range of concentrations, MT length regulation is bistable. We test our predictions by conducting in vitro experiments and find that the bistable behavior manifests in a bimodal MT length distribution
SummaryBackgroundThe pole-to-pole distance of the metaphase spindle is reasonably constant in a give...
Motor proteins in living cells, such as kinesin and dynein, can move processively along the microtub...
Control of microtubule abundance, stability, and length is crucial to regulate intracellular transpo...
The availability of protein is an important factor for the determination of the size of the mitotic ...
Length regulation of microtubules (MTs) is essential for many cellular processes. Molecular motors l...
AbstractProteins from the kinesin-8 family promote microtubule (MT) depolymerization, a process thou...
Summary Motor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manne...
Motor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manner that m...
SummaryMotor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manner...
In many intracellular processes, the length distribution of microtubules is controlled by depolymeri...
The variety of shapes and sizes of the microtubule cytoskeleton is as great as the number of differe...
In many intracellular processes, the length distribution of microtubules is controlled by depolymeri...
AbstractThe assembly and disassembly dynamics of microtubules (MTs) is tightly controlled by MT-asso...
SummaryBackgroundThe pole-to-pole distance of the metaphase spindle is reasonably constant in a give...
Motor proteins in living cells, such as kinesin and dynein, can move processively along the microtub...
Control of microtubule abundance, stability, and length is crucial to regulate intracellular transpo...
The availability of protein is an important factor for the determination of the size of the mitotic ...
Length regulation of microtubules (MTs) is essential for many cellular processes. Molecular motors l...
AbstractProteins from the kinesin-8 family promote microtubule (MT) depolymerization, a process thou...
Summary Motor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manne...
Motor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manner that m...
SummaryMotor proteins in the kinesin-8 family depolymerize microtubules in a length-dependent manner...
In many intracellular processes, the length distribution of microtubules is controlled by depolymeri...
The variety of shapes and sizes of the microtubule cytoskeleton is as great as the number of differe...
In many intracellular processes, the length distribution of microtubules is controlled by depolymeri...
AbstractThe assembly and disassembly dynamics of microtubules (MTs) is tightly controlled by MT-asso...
SummaryBackgroundThe pole-to-pole distance of the metaphase spindle is reasonably constant in a give...
Motor proteins in living cells, such as kinesin and dynein, can move processively along the microtub...
Control of microtubule abundance, stability, and length is crucial to regulate intracellular transpo...