Category: All Publications

Defining Single Molecular Forces Required for Notch Activation Using Nano Yoyo.

Chowdhury F., Li I., Ngo T., Leslie B., Kim B., Sokoloski J., Weiland E., Wang X., Chemla Y., Lohman T., & Ha T. (2016). “Defining Single Molecular Forces Required for Notch Activation Using Nano Yoyo.” Nano Lett. 2016 Jun 8;16(6):3892-7. doi: 10.1021/acs.nanolett.6b01403. Epub 2016 May 12. (Abstract)

Genetic Evolution of a Helicobacter pylori Acid-Sensing Histidine Kinase and Gastric Disease.

Krishna U., Romero-Gallo J., Suarez G., Azah A., Krezel A.M., Varga M.G., Forsyth M.H., & Peek R.M. Jr. (2016). “Genetic Evolution of a Helicobacter pylori Acid-Sensing Histidine Kinase and Gastric Disease.” J Infect Dis. 2016 Aug 15;214(4):644-8. doi: 10.1093/infdis/jiw189. Epub 2016 May 10. (Abstract)

Pif1 removes a Rap1-dependent barrier to the strand displacement activity of DNA polymerase δ.

Koc K.N., Singh S.P., Stodola J.L., Burgers P.M., & Galletto R. (2016). “Pif1 removes a Rap1-dependent barrier to the strand displacement activity of DNA polymerase δ.” Nucleic Acids Res. 2016 May 5;44(8):3811-9. doi: 10.1093/nar/gkw181. Epub 2016 Mar 21. (Abstract)

The Dimeric Architecture of Checkpoint Kinases Mec1ATR and Tel1ATM Reveal a Common Structural Organization.

Sawicka, M., Wanrooij, P.H., Darbari, V.C., Tannous, E., Hailemariam, S., Bose, D., Makarova, A.V., Burgers, P.M. and Zhang, X.
The Dimeric Architecture of Checkpoint Kinases Mec1ATR and Tel1ATM Reveal a Common Structural Organization.
J Biol Chem 291:13436-47 (2016) (Abstract)

Characterization of parasite-specific indels and their proposed relevance for selective anthelminthic drug targeting.

Wang Q., Heizer E., Rosa B.A., Wildman S.A., Janetka J.W., & Mitreva, M. (2016). “Characterization of parasite-specific indels and their proposed relevance for selective anthelminthic drug targeting.” Infect Genet Evol. 2016 Apr;39:201-211. doi: 10.1016/j.meegid.2016.01.025. Epub 2016 Jan 30. (Abstract)

Singh, S.P., Koc, K.N., Stodola, J.L. and Galletto, R.
A Monomer of Pif1 Unwinds Double-Stranded DNA and It Is Regulated by the Nature of the Non-Translocating Strand at the 3′-End.
J Mol Biol 428:1053-1067 (2016). (Abstract)