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Santiago-Frangos, Andrew
59
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Online (59)
Mediatypes
Articles (Online) (35)
Bookchapter (Online) (3)
OpenAccess-fulltext (21)
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1
Characterization and genomic analysis of the Lyme disease s..:
Faith, Dominick R.
;
Kinnersley, Margie
;
Brooks, Diane M.
...
PLOS Pathogens. 20 (2024) 4 - p. e1012122 , 2024
Link:
https://doi.org/10.1371/..
?
2
Structure reveals why genome folding is necessary for site-..:
Santiago-Frangos, Andrew
;
Henriques, William S.
;
Wiegand, Tanner
...
Nature Structural & Molecular Biology. 30 (2023) 11 - p. 1675-1685 , 2023
Link:
https://doi.org/10.1038/..
?
3
Abstract 1243: Mechanisms of CRISPR-mediated immunity and a..:
Santiago-Frangos, Andrew
;
Henriques, William
;
Wiegand, Tanner
...
Journal of Biological Chemistry. 299 (2023) 3 - p. 103459 , 2023
Link:
https://doi.org/10.1016/..
?
4
CRISPR-Cas, Argonaute proteins and the emerging landscape o..:
Santiago-Frangos, Andrew
;
Nemudryi, Artem
;
Nemudraia, Anna
...
Methods. 205 (2022) - p. 1-10 , 2022
Link:
https://doi.org/10.1016/..
?
5
Diversity of bacterial small RNAs drives competitive strate..:
Roca, Jorjethe
;
Santiago-Frangos, Andrew
;
Woodson, Sarah A.
Nature Communications. 13 (2022) 1 - p. , 2022
Link:
https://doi.org/10.1038/..
?
6
Sequence-specific capture and concentration of viral RNA by..:
Nemudraia, Anna
;
Nemudryi, Artem
;
Buyukyoruk, Murat
...
Nature Communications. 13 (2022) 1 - p. , 2022
Link:
https://doi.org/10.1038/..
?
7
Intrinsic signal amplification by type III CRISPR-Cas syste..:
Santiago-Frangos, Andrew
;
Hall, Laina N.
;
Nemudraia, Anna
...
Cell Reports Medicine. 2 (2021) 6 - p. 100319 , 2021
Link:
https://doi.org/10.1016/..
?
8
Distribution and phasing of sequence motifs that facilitate..:
Santiago-Frangos, Andrew
;
Buyukyoruk, Murat
;
Wiegand, Tanner
..
Current Biology. 31 (2021) 16 - p. 3515-3524.e6 , 2021
Link:
https://doi.org/10.1016/..
?
9
AcrIF9 tethers non-sequence specific dsDNA to the CRISPR RN..:
Hirschi, Marscha
;
Lu, Wang-Ting
;
Santiago-Frangos, Andrew
...
Nature Communications. 11 (2020) 1 - p. , 2020
Link:
https://doi.org/10.1038/..
?
10
Caulobacter crescentusHfq structure reveals a conserved mec..:
Santiago-Frangos, Andrew
;
Fröhlich, Kathrin S.
;
Jeliazkov, Jeliazko R.
...
Proceedings of the National Academy of Sciences. 116 (2019) 22 - p. 10978-10987 , 2019
Link:
https://doi.org/10.1073/..
?
11
Caulobacter crescentus Hfq structure reveals a conserved me..:
Santiago-Frangos, Andrew
;
Fröhlich, Kathrin S.
;
Jeliazkov, Jeliazko R.
...
Proceedings of the National Academy of Sciences of the United States of America. 116 (2019) 22 - p. 10978-10987 , 2019
Link:
https://www.jstor.org/st..
?
12
Proteins That Chaperone RNA Regulation:
, In:
Regulating with RNA in Bacteria and Archaea
,
Woodson, Sarah A.
;
Panja, Subrata
;
Santiago-Frangos, Andrew
- p. 383-397 , 2018
Link:
https://doi.org/10.1128/..
?
13
Acidic C-terminal domains autoregulate the RNA chaperone Hf:
Santiago-Frangos, Andrew
;
Jeliazkov, Jeliazko R
;
Gray, Jeffrey J
.
eLife. 6 (2017) - p. , 2017
Link:
https://doi.org/10.7554/..
?
14
C-terminal domain of the RNA chaperone Hfq drives sRNA comp..:
Santiago-Frangos, Andrew
;
Kavita, Kumari
;
Schu, Daniel J.
..
Proceedings of the National Academy of Sciences. 113 (2016) 41 - p. , 2016
Link:
https://doi.org/10.1073/..
?
15
C-terminal domain of the RNA chaperone Hfq drives sRNA comp..:
Santiago-Frangos, Andrew
;
Kavita, Kumari
;
Schu, Daniel J.
..
Proceedings of the National Academy of Sciences of the United States of America. 113 (2016) 41 - p. E6089-E6096 , 2016
Link:
https://www.jstor.org/st..
1-15