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Nucleic Acids Research
|
June 24, 1988
Components required for in vitro cleavage and polyadenylation of eukaryotic mRNA
J McLauchlan, C L Moore, S Simpson, et al.
Nucleic Acids Research
|
September 11, 1992
Methods for improved protein expression using pET vectors
J Furlong, M Meighan, J Conner, et al.
Nucleic Acids Research
|
November 11, 1985
A modular system for the assay of transcription regulatory signals: the sequence TAATGARAT is required for herpes simplex virus immediate early gene activation
D F Gaffney, J McLauchlan, J L Whitton, et al.
The Journal of General Virology
|
September 1, 1976
Virus specified enzyme activity and RNA species in herpes simplex virus type 1 transformed mouse cells
A T Jamieson, J C Macnab, B Perbal, et al.
The Journal of General Virology
|
February 1, 1987
Human papillomavirus type 16 DNA from a vulvar carcinoma in situ is present as head-to-tail dimeric episomes with a deletion in the non-coding region
I M Kennedy, S Simpson, J C Macnab, et al.
The New England Journal of Medicine
|
October 23, 1986
Human papillomavirus in clinically and histologically normal tissue of patients with genital cancer
J C Macnab, S A Walkinshaw, J W Cordiner, et al.
Journal of Virology
|
February 27, 2001
Herpes simplex virus type 1 blocks the apoptotic host cell defense mechanisms that target Bcl-2 and manipulates activation of p38 mitogen-activated protein kinase to improve viral replication
G Zachos, M Koffa, C M Preston, et al.
Journal of the Tennessee Medical Association
|
April 1, 1994
Penetrating carotid artery injury with associated neurologic deficit
C P Major, W B Brock, J B Clements, et al.
Journal of the Tennessee Medical Association
|
September 1, 1990
Blunt intestinal trauma
D F Fisher, M S Greer, W L Russell, et al.
Nucleic Acids Research
|
September 24, 1983
Immediate-early mRNA-2 of herpes simplex viruses types 1 and 2 is unspliced: conserved sequences around the 5' and 3' termini correspond to transcription regulatory signals
J L Whitton, F J Rixon, A J Easton, et al.
Page
of 8
Search research articles
Search
Showing results (41-50 of 74) with videos related to
Sort By:
Page
of 8
Nucleic Acids Research
|
June 24, 1988
Components required for in vitro cleavage and polyadenylation of eukaryotic mRNA
J McLauchlan, C L Moore, S Simpson, et al.
Nucleic Acids Research
|
September 11, 1992
Methods for improved protein expression using pET vectors
J Furlong, M Meighan, J Conner, et al.
Nucleic Acids Research
|
November 11, 1985
A modular system for the assay of transcription regulatory signals: the sequence TAATGARAT is required for herpes simplex virus immediate early gene activation
D F Gaffney, J McLauchlan, J L Whitton, et al.
The Journal of General Virology
|
September 1, 1976
Virus specified enzyme activity and RNA species in herpes simplex virus type 1 transformed mouse cells
A T Jamieson, J C Macnab, B Perbal, et al.
The Journal of General Virology
|
February 1, 1987
Human papillomavirus type 16 DNA from a vulvar carcinoma in situ is present as head-to-tail dimeric episomes with a deletion in the non-coding region
I M Kennedy, S Simpson, J C Macnab, et al.
The New England Journal of Medicine
|
October 23, 1986
Human papillomavirus in clinically and histologically normal tissue of patients with genital cancer
J C Macnab, S A Walkinshaw, J W Cordiner, et al.
Journal of Virology
|
February 27, 2001
Herpes simplex virus type 1 blocks the apoptotic host cell defense mechanisms that target Bcl-2 and manipulates activation of p38 mitogen-activated protein kinase to improve viral replication
G Zachos, M Koffa, C M Preston, et al.
Journal of the Tennessee Medical Association
|
April 1, 1994
Penetrating carotid artery injury with associated neurologic deficit
C P Major, W B Brock, J B Clements, et al.
Journal of the Tennessee Medical Association
|
September 1, 1990
Blunt intestinal trauma
D F Fisher, M S Greer, W L Russell, et al.
Nucleic Acids Research
|
September 24, 1983
Immediate-early mRNA-2 of herpes simplex viruses types 1 and 2 is unspliced: conserved sequences around the 5' and 3' termini correspond to transcription regulatory signals
J L Whitton, F J Rixon, A J Easton, et al.
Page
of 8