|
|
|
|
|
|
|
|
| ( 1 of 1 ) |
| United States Patent | 8,945,839 |
| Zhang | February 3, 2015 |
The invention provides for systems, methods, and compositions for altering expression of target gene sequences and related gene products. Provided are vectors and vector systems, some of which encode one or more components of a CRISPR complex, as well as methods for the design and use of such vectors. Also provided are methods of directing CRISPR complex formation in eukaryotic cells and methods for utilizing the CRISPR-Cas system.
| Inventors: | Zhang; Feng (Cambridge, MA) | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Applicant: |
| ||||||||||
| Assignee: |
The Broad Institute Inc.
(Cambridge,
MA)
Massachusetts Institute of Technology (Cambridge, MA) |
||||||||||
| Family ID: | 50441380 | ||||||||||
| Appl. No.: | 14/256,912 | ||||||||||
| Filed: | April 18, 2014 |
| Document Identifier | Publication Date | |
|---|---|---|
| US 20140227787 A1 | Aug 14, 2014 | |
| Application Number | Filing Date | Patent Number | Issue Date | ||
|---|---|---|---|---|---|
| 14183429 | Feb 18, 2014 | 8771945 | |||
| 14054414 | Apr 15, 2014 | 8697359 | |||
| 61736527 | Dec 12, 2012 | ||||
| 61748427 | Jan 2, 2013 | ||||
| 61791409 | Mar 15, 2013 | ||||
| 61835931 | Jun 17, 2013 | ||||
| 61842322 | Jul 2, 2013 | ||||
| Current U.S. Class: | 435/6.1; 536/23.7; 536/22.1; 424/94.1; 424/94.6; 435/220; 536/23.1; 536/24.1; 435/199; 435/195; 435/320.1; 424/94.61; 435/6.13 |
| Current CPC Class: | C12N 9/22 (20130101); C12N 9/96 (20130101); C12Q 1/68 (20130101); C12N 15/85 (20130101); C12N 15/102 (20130101); C12N 15/111 (20130101); C12N 15/907 (20130101); C12N 15/63 (20130101); C12N 15/902 (20130101); C12N 2800/80 (20130101); C12N 15/1082 (20130101); C12N 2310/20 (20170501); A61K 38/43 (20130101); C12N 2310/10 (20130101); A61K 38/47 (20130101); A61K 38/46 (20130101); C12N 9/14 (20130101); C12N 9/52 (20130101); C12N 2800/30 (20130101); C12N 2800/90 (20130101); C12N 15/00 (20130101) |
| Current International Class: | C12Q 1/68 (20060101); A61K 38/47 (20060101); A61K 38/46 (20060101); C12N 9/22 (20060101); C07H 21/04 (20060101); C07H 21/02 (20060101); C12N 15/00 (20060101); C12N 9/52 (20060101); C12N 9/14 (20060101); A61K 38/43 (20060101) |
| 2010/0076057 | March 2010 | Sontheimer et al. |
| 2011/0189776 | August 2011 | Terns et al. |
| 2011/0223638 | September 2011 | Wiedenheft et al. |
| 2013/0130248 | May 2013 | Haurwitz et al. |
| 2014/0068797 | March 2014 | Doudna et al. |
| 13824232 | Jun 2014 | EP | |||
| WO/2008/108989 | Sep 2008 | WO | |||
| WO/2010/054108 | May 2010 | WO | |||
| WO/2012/164565 | Dec 2012 | WO | |||
| WO/2013/098244 | Jul 2013 | WO | |||
| 2013/141680 | Sep 2013 | WO | |||
| 2013/142578 | Sep 2013 | WO | |||
| WO/2013176772 | Nov 2013 | WO | |||
| WO 2014/065596 | May 2014 | WO | |||
| WO 2014/089290 | Jun 2014 | WO | |||
| WO 2014/093479 | Jun 2014 | WO | |||
| WO2014/093712 | Jun 2014 | WO | |||
| WO 2014/099744 | Jun 2014 | WO | |||
| WO 2014/099750 | Jun 2014 | WO | |||
US. Appl. No. 61/652,086, filed May 25, 2012 69 pages. cited by examiner . U.S. Appl. No. 61/716,256, filed Oct. 19, 2012 103 pages. cited by examiner . U.S. Appl. No. 61/613,373, filed Mar. 20, 2012 51 pages. cited by examiner . U.S. Appl. No. 61/625,420, filed Apr. 17, 2013 51 pages. cited by examiner . U.S. Appl. No. 61/734,256, filed Dec. 6, 2012, Fuqiang Chen. cited by applicant . U.S. Appl. No. 61/758,624, filed Jan. 30, 2013, Fuqiang Chen. cited by applicant . U.S. Appl. No. 61/761,046, filed Feb. 5, 2013, Scott Knight. cited by applicant . U.S. Appl. No. 61/794,422, filed Mar. 15, 2013, Scott Knight. cited by applicant . Le Cong, et al., Multiplex Genome Engineering Using CRISPR-Cas Systems, Science (Feb. 2013) vol. 339, p. 819-823. cited by applicant . Seung Woo Cho, et al., Targeted Genome Engineering in Human Cells With the Cas9 RNA-Guided Endonuclease, Nature Biotechnology (Mar. 2013) vol. 31, No. 3, p. 230-232. cited by applicant . Seung Woo Cho, et al., Supplementary Information: Targeted Genome Engineering in Human Cells With the Cas9 RNA-Guided Endonuclease, Nature Biotechnology (Mar. 2013) vol. 31, No. 3, p. 1-10. cited by applicant . Al-Attar et al., Clustered Regularly Interspaced Short Palindromic Repeats (CRISPRs): The Hallmark of an Ingenious Antiviral Defense Mechanism in Prokaryotes, Biol Chem.(2011) vol. 392, Issue 4, pp. 277-289. cited by applicant . Carroll, A CRISPR Approach to Gene Targeting, Molecular Therapy (2012) vol. 20, No. 9, p. 1658-1660. cited by applicant . Gasiunas, et al., Cas9-crRNA Ribonucleoprotein Complex Mediates Specific DNA cleavage for Adaptive Immunity in Bacteria, PNAS USA (2012) vol. 109, No. 39, p. E2579-E2586. cited by applicant . Hale et al., Essential Features and Rational Design of CRISPR RNAs That Function With the Cas RAMP Module Complex to Cleave RNAs, Molecular Cell,(2012) vol. 45, Issue 3, 292-302. cited by applicant . Jinek et al, A Programmable Dual-RNA-Guided DNA Endonuclease in Adaptive Bacterial Immunity, Science (2012) vol. 337, p. 816-821. cited by applicant . Makarova et al., Evolution and Classification of the CRISPR-CAS Systems, Nature Reviews Microbiology (2011) vol. 9, No. 6, p. 467-477. cited by applicant . Erik Sontheimer, Project 7: Establishing RNA-Directed DNA Targeting in Eukaryotic Cells; Project dates: Nov. 16, 2011 to Dec. 31, 2012 (Feb. 4, 2012). cited by applicant . Wiedenheft, et al., RNA-Guided Genetic Silencing Systems in Bacteria and Archaea, Nature (2012) vol. 482, p. 331-338. cited by applicant . Alexandra E. Briner, et al., Guide RNA Functional Modules Direct Cas9 Activity and Orthogonality, Molecular Cell (Oct. 23, 2014) vol. 56, p. 333-339. cited by applicant . Electronic Mail dated Nov. 3, 2014 from Thomas Kowalski to Examiner Nancy J. Leith. cited by applicant . Susanne Andreas, et al., Enhanced Efficiency Through Nuclear Localization Signal Fusion on Phage .phi.C31-Integrase: Activity Comparison With Cre and FLPe Recombinase in Mammalian Cells, Nucleic Acids Research (2002) vol. 30, No. 11, p. 2299-2306. cited by applicant . Jens Boch, et al., Xanthomonas AvrBs3 Family-Type III Effectors: Discovery and Function, Annu. Rev. Phytopathol. (2010) vol. 48, p. 419-436. cited by applicant . Tomas Cermak, et al., Efficient Design and Assembly of Custom TALEN and Other TAL Effector-Based Constructs for DNA Targeting, Nucleic Acids Research (2011) vol. 39, No. 12, e82, p. 1-11. cited by applicant . Michelle Christian, et al., Targeting DNA Double-Strand Breaks With TAL Effector Nucleases; Genetics (2010) vol. 186, p. 757-761. cited by applicant . Michelle Christian, et al., Targeting DNA Double-Strand Breaks With TAL Effector Nucleases; Genetics (2010), Supporting Information, 1SI-8SI. cited by applicant . C. Dingwall, et al., Abstract: A Polypeptide Domain That Specifies Migration of Nucleoplasmin Into the Nucleus, Cell (1982) vol. 2, p. 449-58. cited by applicant . Garneau, et al., The CRISPR-Cas Bacterial Immune Systems Cleaves Bacteriophage and Plasmid DNA, Nature (2010) 468:67-71. cited by applicant . David S. Goldfarb, et al., Synthetic Peptides as Nuclear Localization Signals, Nature (1986) vol. 322, p. 641-644. cited by applicant . Claes Gustafsson, et al., Codon Bias and Heterologous Protein Expression, TRENDS in Biotechnology (2004) vol. 22, No. 7, p. 346-353. cited by applicant . Woong Y. Hwang, et al., Efficient Genome Editing in Zebrafish Using a CRISPR-Cas System, Nature Biotechnology (2013) vol. 31, No. 3, p. 227-229. cited by applicant . Mali, et al., RNA-Guided Human Genome engineering via Cas9, Science 339:823-826. Published Online Jan. 2, 2013. cited by applicant . Stacey S. Patterson, et al., Codon Optimization of Bacterial Luciferase (lux) for Expression in Mammalian Cells, J. Ind. Microbio. Biotechnology (2005) vol. 32, p. 115-123. cited by applicant . Matthew H. Porteus, et al., Gene Targeting Using Zinc Finger Nucleases, Nature Biotechnology (2005) vol. 23, No. 8, p. 967-973. cited by applicant . Tim A. Rand, et al., Argonaute2 Cleaves the Anti-Guide Strand of siRNA During RISC Activation, Cell (2005) vol. 123, p. 621-629. cited by applicant . Edward J. Rebar, et al., Induction of Angiogenesis in a Mouse Model Using Engineered Transcription Factors, Nature Medicine (Dec. 2002) vol. 8, No. 12, p. 1427-1432. cited by applicant . Laura Schramm, et al., Recruitment of RNA Polymerase III to Its Target Promoters, Genes & Development (2002) vol. 16, p. 2593-2620. cited by applicant . Sapranauskas, et al., The Streptococcus thermophilus CRISPR-Cas System Provides Immunity in Escherichia coli, Nucleic Acids Research 39:9275-9282. Published Online Aug. 3, 2011. cited by applicant . Niraj H. Tolia, et al., Slicer and the Argonautes, Nature Chemical Biology (2007) vol. 3, No. 1, p. 36-43. cited by applicant . Fyodor D. Urnov, et al., Highly Efficient Endogenous Human Gene Correction Using Designed Zinc-Finger Nucleases, Nature (2005) vol. 435, p. 646-651. cited by applicant . Wu, et al., Genome-Wide Binding of the CRISPR Endonuclease Cas9 in Mammalian Cells, Nature Biotechnology p. 1-9. Published Online Apr. 20, 2014). cited by applicant . Third-Party Observation for Application No. EP20130824232 Aug. 9, 2014. cited by applicant . Miller, et al., A TALE Nuclease Architecture for Efficient Genome Editing Nature Biotechnology (2011) vol. 29, No. 2, p. 143-150. cited by applicant . U.S. Appl. No. 61/735,876, filed Dec. 11, 2012, Blake A. Wiedenheft. cited by applicant . U.S. Appl. No. 61/799,531, filed Mar. 15, 2013, Blake A. Wiedenheft. cited by applicant . Le Cong, et al., Supplementary Material: Multiplex Genome Engineering Using CRISPR-Cas Systems, Science Express (Jul. 5, 2012). cited by applicant . Third Party Observation filed Oct. 22, 2014 in EP No. 20130824232. cited by applicant . Response to Third Party Observations in EP Application No. 20130824232 filed Oct. 27, 2014, with Request for Oral Hearing. cited by applicant . Request for Oral Hearing in EP Application No. 13818570.7, Oct. 27, 2014. cited by applicant . Elitza Deltcheva, et al., CRISPR RNA Maturation by Trans-Encoded Small RNA and Host Factor RNase III, Nature (2011) vol. 471, p. 602-607. cited by applicant . Deltcheva, et al., Supplementary Figures: CRISPR RNA Maturation by Trans-Encoded Small RNA and Host Factor RNase III. Downloaded from www.nature.com/nature, p. 1-35, 2011 cited by applicant . Third Party Observation for Application No. EP20130824232 filed Sep. 22, 2014. cited by applicant . Shen, et al., Generation of Gene-Modified Mice via Cas9/RNA-Mediated Gene Targeting, Cell Research (2013) vol. 23, p. 720-723. cited by applicant . Nakamura, et al., Codon Usage Tabulated From International DNA Sequence Databases: Status for the Year 2000, Nucleic Acids Research (2000) vol. 28, No. 1, p. 292. cited by applicant . U.S. Appl. No. 61/738,355, filed Dec. 17, 2012, George M. Church. cited by applicant . U.S. Appl. No. 61/779,169, filed Mar. 13, 2013, Prashant Mali. cited by applicant . Kirill A. Datsenko, et al., Molecular Memory of Prior Infections Activates the CRISPR/Cas Adaptive Bacterial Immunity System, Nature Communications, Jul. 10, 2012, DOI:10.1038/ncomms1937. cited by applicant . Ksenia Pougach, et al., Transcription, Processing and Function of CRISPR Cassettes in Escherichia coli, Mol. Microbiol, Sep. 2010, 77(6), p. 1367-1379. cited by applicant . Response to Third Party Observations in EP No. 13824232.6 filed Oct. 2, 2014, with Redlined and Clean Amended Claims. cited by applicant . Third Party Observation filed Oct. 1, 2014 in EP No. 20130818570. cited by applicant . Response to Third Party Observations in EP No. 20130818570 filed Oct. 16, 2014, with Redlined and Clean Amended Claims. cited by applicant. |
|
|