TY - JOUR
T1 - Entropy-driven collective interactions in DNA brushes on a biochip
AU - Bracha, Dan
AU - Karzbrun, Eyal
AU - Shemer, Gabriel
AU - Pincus, Philip A.
AU - Bar-Ziv, Roy
N1 - Israel Science Foundation; Minerva Foundation; US-Israel Binational Science Foundation; National Science Foundation (NSF)-Division of Materials Research [1101900]; World Class University Initiative, Korea Advanced Institute of Science and Technology, Daejeon, South Korea; Azrieli Foundation; Aspen Center for Physics (NSF Award) [1066293]The authors thank Sam Safran for fruitful discussions. This work was supported by the Israel Science Foundation, the Minerva Foundation, and the US-Israel Binational Science Foundation (to R.H.B.-Z.). P.A.P. acknowledges partial support from National Science Foundation (NSF)-Division of Materials Research-1101900 and the World Class University Initiative, Korea Advanced Institute of Science and Technology, Daejeon, South Korea. He also thanks the Aspen Center for Physics (NSF Award 1066293) for hospitality during the summer 2012. E.K. thanks the Azrieli Foundation for the award of an Azrieli Fellowship.
PY - 2013/3/19
Y1 - 2013/3/19
N2 - Cell-free gene expression in localized DNA brushes on a biochip has been shown to depend on gene density and orientation, suggesting that brushes form compartments with partitioned conditions. At high density, the interplay of DNA entropic elasticity, electrostatics, and excluded volume interactions leads to collective conformations that affect the function of DNA-associated proteins. Hence, measuring the collective interactions in dense DNA, free of proteins, is essential for understanding crowded cellular environments and for the design of cell-free synthetic biochips. Here, we assembled dense DNA polymer brushes on a biochip along a density gradient and directly measured the collective extension of DNA using evanescent fluorescence. DNA of 1 kbp in a brush undergoes major conformational changes, from a relaxed random coil to a stretched configuration, following a universal function of density to ionic strength ratio with scaling exponent of 1/3. DNA extends because of the swelling force induced by the osmotic pressure of ions, which are trapped in the brush to maintain local charge neutrality, in competition with the restoring force of DNA entropic elasticity. The measurements reveal in DNA crossover between regimes of osmotic, salted, mushroom, and quasineutral brush. It is surprising to note that, at physiological ionic strength, DNA density does not induce collective stretch despite significant chain overlap, which implies that excluded volume interactions in DNA are weak.
AB - Cell-free gene expression in localized DNA brushes on a biochip has been shown to depend on gene density and orientation, suggesting that brushes form compartments with partitioned conditions. At high density, the interplay of DNA entropic elasticity, electrostatics, and excluded volume interactions leads to collective conformations that affect the function of DNA-associated proteins. Hence, measuring the collective interactions in dense DNA, free of proteins, is essential for understanding crowded cellular environments and for the design of cell-free synthetic biochips. Here, we assembled dense DNA polymer brushes on a biochip along a density gradient and directly measured the collective extension of DNA using evanescent fluorescence. DNA of 1 kbp in a brush undergoes major conformational changes, from a relaxed random coil to a stretched configuration, following a universal function of density to ionic strength ratio with scaling exponent of 1/3. DNA extends because of the swelling force induced by the osmotic pressure of ions, which are trapped in the brush to maintain local charge neutrality, in competition with the restoring force of DNA entropic elasticity. The measurements reveal in DNA crossover between regimes of osmotic, salted, mushroom, and quasineutral brush. It is surprising to note that, at physiological ionic strength, DNA density does not induce collective stretch despite significant chain overlap, which implies that excluded volume interactions in DNA are weak.
KW - DNA biophysics
KW - Synthetic biology
UR - http://www.scopus.com/inward/record.url?scp=84875244491&partnerID=8YFLogxK
U2 - 10.1073/pnas.1220076110
DO - 10.1073/pnas.1220076110
M3 - مقالة
C2 - 23471983
SN - 0027-8424
VL - 110
SP - 4534
EP - 4538
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 12
ER -