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Ken Jacobson

University of North Carolina at Chapel Hill

ORCID: 0000-0001-9517-9098

Publishes on Cellular Mechanics and Interactions, Lipid Membrane Structure and Behavior, Advanced Fluorescence Microscopy Techniques. 239 papers and 18k citations.

239Publications
18kTotal Citations

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Top publicationsby citations

SINGLE-PARTICLE TRACKING:Applications to Membrane Dynamics
Michael J. Saxton, Ken Jacobson|Annual Review of Biophysics and Biomolecular Structure|1997
Cited by 1.8k

Measurements of trajectories of individual proteins or lipids in the plasma membrane of cells show a variety of types of motion. Brownian motion is observed, but many of the particles undergo non-Brownian motion, including directed motion, confined motion, and anomalous diffusion. The variety of motion leads to significant effects on the kinetics of reactions among membrane-bound species and requires a revision of existing views of membrane structure and dynamics.

MAP kinases and cell migration
Cai Huang, Ken Jacobson, Michael D. Schaller|Journal of Cell Science|2004
Cited by 1.1kOpen Access

Recent studies have demonstrated that mitogen-activated protein kinases (MAPKs), including Jun N-terminus kinase (JNK), p38 and Erk, play crucial roles in cell migration. JNK, for example, regulates cell migration by phosphorylating paxillin, DCX, Jun and microtubule-associated proteins. Studies of p38 show that this MAPK modulates migration by phosphorylating MAPK-activated protein kinase 2/3 (MAPKAP 2/3), which appears to be important for directionality of migration. Erk governs cell movement by phosphorylating myosin light chain kinase (MLCK), calpain or FAK. Thus, the different kinases in the MAPK family all seem able to regulate cell migration but by distinct mechanisms.

Phospholipids undergo hop diffusion in compartmentalized cell membrane
Takahiro Fujiwara, Ken Ritchie, Hideji Murakoshi et al.|The Journal of Cell Biology|2002
Cited by 919Open Access

The diffusion rate of lipids in the cell membrane is reduced by a factor of 5-100 from that in artificial bilayers. This slowing mechanism has puzzled cell biologists for the last 25 yr. Here we address this issue by studying the movement of unsaturated phospholipids in rat kidney fibroblasts at the single molecule level at the temporal resolution of 25 micros. The cell membrane was found to be compartmentalized: phospholipids are confined within 230-nm-diameter (phi) compartments for 11 ms on average before hopping to adjacent compartments. These 230-nm compartments exist within greater 750-nm-phi compartments where these phospholipids are confined for 0.33 s on average. The diffusion rate within 230-nm compartments is 5.4 microm2/s, which is nearly as fast as that in large unilamellar vesicles, indicating that the diffusion in the cell membrane is reduced not because diffusion per se is slow, but because the cell membrane is compartmentalized with regard to lateral diffusion of phospholipids. Such compartmentalization depends on the actin-based membrane skeleton, but not on the extracellular matrix, extracellular domains of membrane proteins, or cholesterol-enriched rafts. We propose that various transmembrane proteins anchored to the actin-based membrane skeleton meshwork act as rows of pickets that temporarily confine phospholipids.