AU2001235278A1 - Method for the treatment or prevention of flavivirus infections using nucleoside analogues - Google Patents

Method for the treatment or prevention of flavivirus infections using nucleoside analogues

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Publication number
AU2001235278A1
AU2001235278A1 AU2001235278A AU3527801A AU2001235278A1 AU 2001235278 A1 AU2001235278 A1 AU 2001235278A1 AU 2001235278 A AU2001235278 A AU 2001235278A AU 3527801 A AU3527801 A AU 3527801A AU 2001235278 A1 AU2001235278 A1 AU 2001235278A1
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Australia
Prior art keywords
compound
aza
deaza
purm
triphosphate
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AU2001235278A
Inventor
Moulay-Hicham Alaoui-Ismail
Yun-Xing Cheng
Jean-Francois Lavallee
Mohammad Arshad Siddiqui
Richard Storer
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Shire Canada Inc
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IAF BioChem International Inc
Biochem Pharma Inc
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Application filed by IAF BioChem International Inc, Biochem Pharma Inc filed Critical IAF BioChem International Inc
Publication of AU2001235278A1 publication Critical patent/AU2001235278A1/en
Abandoned legal-status Critical Current

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Description

METHOD FOR THE TREATMENT OR PREVENTION OF FLAVIVIRUS INFECTIONS USING NUCLEOSIDE ANALOGUES
FIELD OF THE INVENTION
The present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues.
BACKGROUND OF THE INVENTION
Hepatitis is a disease occurring throughout the world. It is generally of viral nature, although there are other causes known. Viral hepatitis is by far the most common form of hepatitis. Nearly 750,000 Americans are affected by hepatitis each year, and out of those, more than 150,000 are infected with the hepatitis C virus (HCV) .
HCV is a positive-stranded RNA virus belonging to the Flaviviridae family and has closest relationship to the pestiviruses that include hog cholera virus and bovine viral diarrhea virus (BVDV) . HCV is believed to replicate through the production of a complementary negative-strand
RNA template. Due to the lack of an efficient culture replication system for the virus, HCV particles were isolated from pooled human plasma and shown, by electron microscopy, to have a diameter of about 50-60 nm. The HCV genome is a single-stranded, positive-sense RNA of about
9,600 bp coding for a polyprotem of 3009-3030 amino- acids, which is cleaved co- and post-translationally by cellular and two viral protemases into mature viral proteins (core, El, E2, p7, NS2, NS3, NS4A, NS4B, NS5A,
NS5B) . It is believed that the structural proteins, El and E2, the major glycoprotems are embedded into a viral lipid envelop and form stable heterodimers . It is also believed that the structural core protein interacts with the viral RNA genome to form the nucleocapsid. The nonstructural proteins designated NS2 to NS5 include proteins with enzymatic functions involved in virus replication and protein processing including a polymerase, protease and helicase.
The main source of contamination with HCV is blood. The magnitude of the HCV infection as a health problem is illustrated by the prevalence among high-risk groups. For example, 60% to 90% of hemophiliacs and more than 80% of intravenous drug abusers in western countries are chronically infected with HCV. For intravenous drug abusers, the prevalence varies from about 28% to 70% depending on the population studied. The proportion of new HCV infections associated with post-transfusion has been markedly reduced lately due to advances in diagnostic tools used to screen blood donors.
The only treatment currently available for HCV infection is interferon-α (IFN- ). However, according to different clinical studies, only 70% of treated patients normalize alanine aminotransferase (ALT) levels in the serum, and after discontinuation of IFN, 35% to 45% of these responders relapse. In general, only 20% to 25% of patients have long-term responses to IFN. Clinical studies have shown that combination treatment with IFN and ribavirin (RIBA) results in a superior clinical response than IFN alone. Different genotypes of HCV respond differently to IFN therapy, genotype lb is more resistant to IFN therapy than type 2 and 3.
There is therefore a great need for the further development of anti-viral agents.
Summary of the invention The present invention relates to a method for the treatment or prevention of Flavivirus infections in a host comprising administering a therapeutically effective amount of a compound having the formula I or a pharmaceutically acceptable salt thereof:
wherein B is chosen from a purine, a pyrimidine or an analogue thereof; Ra is chosen from H, monophosphate, diphosphate, triphosphate, carbonyl substituted with a Cι-6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C 6-ιo aryl, and O
II P—ORc
ORc wherein each Re are independently chosen from
H, Cι_6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C6-ιo aryl and an hydroxy protecting group; and
Z is halogen or ORb, wherein Rb is chosen from of H, Cχ-6 alkyl, C2-6 alkenyl, C2_6 alkynyl, C ι-6 acyl, or an hydroxy protecting group
Di and D2 are independently selected from N3, ", or H , Di and D2 can also be joined to be chosen from C3-cycloalkyl,
-=CH2, or -=CF2, and wherein said compound is in the form of a single enantiomer or a mixture thereof including racemic mixtures; with the proviso that when B is adenine, Z is ORb, Di s H, D2 is H and Rb is ri, Ra is not tπphosphate or h.
In another aspect, there is provided a pharmaceutical formulation comprising the compounds of the invention n combination with a pharmaceutically acceptable carrier or excipient .
Still another aspect, there is provided a metnod for treating or preventing a viral infection in a host comprising administering a combination comprising at least one compound according to formula I and at least one further therapeutic agent.
In another aspect of the invention is the use of a compound according to formula I, for the preparation of a medicament for treating or preventing a viral infections in a host.
DETAILED DESCRIPTION OF THE INVENTION
In one emboαiment, the viral infection is chosen from Flavivirus infections.
In one embodiment, the Flavivirus infection is chosen from Hepatitis C virus (HCV) , bovine viral αiarrhea virus (BVDV) , hog cholera virus and yellow fever virus.
In an other embodiment, the Flavivirus infection is Hepatitis C virus.
In one embodiment, there is also provided a method for inhibiting or reducing the activity of viral polymerase in a host comprising administering a tnerapeutically effective amount of a compound having the formula I.
In another embodiment, the viral polymerase is HCV polymerase .
The present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues in a host comprising administering a therapeutically effective amount of a compound having the formula la or a pharmaceutically acceptable salt thereof:
wherein
B is chosen from a purine, a pyrimidme or an analogue thereof; Ra is chosen from H, monophosphate, diphosphate, tπphosphate, carbonyl substituted with a Cι-6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C 6-ιo aryl, and O
II P—ORc
ORc wherein each Re are independently chosen from
H, Cι_6 alkyl, C2-6 alkenyl, C2.6 alkynyl, C6-ιo aryl and an hydroxy protecting group; and
Z is halogen or ORb, wherein Rb is chosen from of H, Cι_6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C ι-6 acyl, or an hydroxy protecting group; and wherein said compound is in the form of a single enantiomer or a mixture thereof including racemic mixtures ; with the proviso that when B is adenme, Z is ORb and Rb is H, Ra is not tπphosphate or H.
In one embodiment, the compounds and methods of the present invention comprise those wherein the following embodiments are present, either independently or in combination.
In one embodiment, B is chosen from adenm-9-yl, guanm- 9-yl, mosm-9-yl, 2-amιno-puπn-9-yl, 2-amιno-6-cπ_oro- purm-9-yl, 2-6-dιamιno-puπn-9-yl, thymm-l-yl, cytosin- 1-yl, uracιl-1-yl, 3-carboxamιdo-l, 2 , 4-trιazol-l-yi, 1- deaza-ademn-9-yl, l-deaza-guanm-9-yl, l-deaza-mosm-9- yl, l-deaza-2-ammo-purm-9-yl, l-deaza-2-ammo-6-chIoro- purm-9-yl, l-deaza-2-6-dιammo-purιn-9-yl, 3-deaza- adenm-9-yl, 3-deaza-guanm-9-yl, 3-deaza-mosm-9-yl, 3- deaza-2-ammo-purm-9-yl, 3-deaza-2-ammo-6-chloro-punn- 9-yl 3-deaza-2-6-dιammo-purm-9-yl, 7-deaza-adenm-9-yl, 7-deaza-guanm-9-yl, 7-deaza-mosm-9-yl, 7-deaza-2- ammo-purm-9-yl, 7-deaza-2-ammo-6-chloro-purm-9-y_, 7- αeaza-2-6-dιammo-pur -9-yl, 7-deaza-8-aza-adenm-9-yl, 7-deaza-8-aza-guanm-9-yl, 7-deaza-8-aza-mosm-9-yl, 7- deaza-8-aza-2-amino-purm-9-yl, 7-deaza-8-aza-2-ammo-6- chloro-puπn-9-yl, 7-deaza-8-aza-2-6-dιammo-purm-9-yl, 8-aza-adenm-9-yl , 8-aza-guanm-9-yl, 8-aza-mosm-9-yl, 8-aza-2-amino-purm-9-yl, 8-aza-2-ammo-6-chloro-puπn-9- yl, 8-aza-2-6-dιammo-purm-9-yl , 2-aza-ademn-9-yl, 2- aza-guanm-9-yl, 2-aza-mosm-9-yl, 2-aza-2-ammo-puπn- 9-yl, 2-aza-2-ammo-6-chloro-purm-9-yl, 2-aza-2-6- dιammo-purm-9-yl, 3-deaza-thymm-l-yl, 3-deaza-cytosm- 1-yl, 3-deaza-uracιl-l-yl, 5-aza-thymm-l-yl, 5-aza- cytosm-1-yl, 5-aza-uracιl-l-yl, 6-aza-thymm-l-yl, 6- aza-cytosm-1-yl, 6-aza-uracιl-l-yl each of whicn is or substituted cy at least one of NHR3, Cι-6al<yl, -OCι_6alkyl, Br, Cl, F, I or OH, wherem R3 is H, C:_„alkyl or Cι_6acyl.
In one embodiment, B is chosen from adenιn-9-yl, guanm- 9-yl, mosm-9-yl, 2-ammo-purm-9-yl, 2-ammo-6-chloro- purm-9-yl, 2-6-dιamιno-purm-9-yl , thymm-l-yl, cytosin- 1-yl, uracιl-1-yl, 3-carboxamιdo-l, 2 , 4-trιazol-l-yl, 3- deaza-adenm-9-yl, 3-deaza-guanm-9-yl, 3-deaza-mosm-9- yl, 3-deaza-2-ammc-purm-9-yl, 3-deaza-2-ammc-6-chloro- purm-9-yl 3-deaza-2-6-dιammo-purm-9-yl, 7-deaza- adenm-9-yl, 7-deaza-guanm-9-yl, 7-deaza-mosm-9-yl, 7- deaza-2-ammo-purm- 9-yl, 7-deaza-2-amιno-6-chloro-punn- 9-yl, 7-deaza-2- -dιammo-purm-9-yl, 7-αeaza-8-aza- adenm-9-yl, 7-deaza-8-aza-guanιn-9-yl, 7-αeaza-8-aza- mosm-9-yl, 7-deaza-8-aza-2-ammo-purm-9-yl, 7-deaza-8- aza-2-ammo-6-chloro-purm-9-yl, 7-deaza-8-aza-2-6- dιammo-purm-9-yl, 8-aza-adenm-9-yl, 8-aza-guanm-9-yl, 8-aza-mosm-9-yl, 8-aza-2-ammo-purm-9-yl, 8-aza-2- ammo- 6-chloro-purm- 9-yl , 8-aza-2- 6-dιammo-purm-9-yl , 2-aza-adenm- 9-yl , 2-aza-guanm-9-yl , 2-aza-mosm- 9-yl , 2 -aza-2 -ammo-pur ιr - 9-yl , 2-aza-2-ammo-6-chloro-purm- 9- yl , 2-aza-2- 6-dιammo-purm- 9-yl , 3-deaza-thymm- l-yl , 3- deaza-cytosm-1-yl , 3-deaza-uracιl- l-yl , 5-aza-thymιn- l- yl , 5-aza-cytosm-l -yl , 5-aza-uracιl-l-yl , 6-aza-thymm- 1-yl , 6-aza-cytosm- l-yl , 6-aza-uracιl- l-yl each of whicn is unsubstituted or substituted oy at least one of NHR3, Cι_6al kyl , -OCι-6alkyl , Br , Cl , F, I or OH, wherem R3 is H, Ci-ealkyl or Cι-6acyl .
In one embodiment, B is chosen from adenm-9-yi, guanin- 9-yl, mosm-9-yl, 2-ammo-purm-9-yl, 2-amιno-β-chloro- purm-9-yl, 2-6-dιammo-purm-9-yl, thymm-l-yl, cytosm- 1-yl, uracιl-1-yl, 3-carboxamιdo-l, 2 , 4-trιazol-l-yl, 3- deaza-adenm-9-yl, 3-deaza-guanm-9-yl, 3-deaza-mosm-9- yl, 3-deaza-2-ammo-purm-9-yl, 3-deaza-2-ammo-6-chloro- purm-9-yl 3-deaza-2-6-dιammo-puπn-9-yl , 7-deaza- adenm-9-yl, "7-deaza-guanm-9-yl, 7-deaza-mosm-9-yl, 7- deaza-2-ammo-purm-9-yl, 7-deaza-2-ammo-6-chloro-punn- 9-yl, 7-deaza-2-6-dιammo-purm-9-yl, 7-deaza-8-aza- adenm-9-yl, 7-deaza-8-aza-guanm-9-yl, 7-deaza-8-aza- mosm-9-yl, 7-deaza-8-aza-2-ammo-purm-9-yl, 7-deaza-8- aza-2-ammo-6-chloro-purm-9-yl, 7-deaza-8-aza-2-6- dιammo-purm-9-yl, 8-aza-adenm-9-yl, 8-aza-guanm-9-yl, 8-aza-mosm-9-yl, 8-aza-2-ammo-purm-9-yl, 8-aza-2- ammo-6-chloro-purm-9-yl, 8-aza-2-6-dιammo-puπn-9-yl, 5-aza-thymm-i-yl, 5-aza-cytosm-l-yl, 5-aza-uracιl-l-yl, 6-aza-thymm-l-yl, 6-aza-cytosm-l-yl, 6-aza-uracιl-l-yl each of which s unsubstituted or substituted by at least one of NHR3, Cι-6alkyl, -OCι-6aikyl, Br, Cl, F, I or OH, wherem R3 is H, Cι_6alkyl or Ci-βacyl .
In one embodiment, B is chosen from adenm-9-yl, guanin- 9-yl, mosm-9-yl, 2-ammo-purm-9-yl, 2-amιno-6-chloro- purm-9-yl, 2-6-dιammo-purm-9-yl, thymm-l-yl, cytosm- 1-yl, uracιl-1-yl, 3-carboxamιdo-l, 2 , 4-trιazol-l-yl each of which is unsubstituted or substituted by at least one of NHR3, Cι_6alkyl, -OCι_6alkyl, Br, Cl, F, I or OH, wherem R3 is H, Cι_6alkyl or Cι_6acyl.
In a further embodiment, B is chosen from adenm-9-yl, guanm-9-yl, 2-ammo-purm-9-yl , 2-amιno-β-chloro-purιn- 9-yl, 2-6-dιammo-purm-9-yl, thymm-l-yl, cytosm-l-yl, uracιl-1-yl, each of which is unsubstituted or substituted by at least one of NHR3, Cι-6alkyl, -OCχ-6alkyl, Br, Cl, F, I or OH, wherem R3 is H, Cι-6alkyl or Cι-6acyl.
In a further embodiment, B is chosen from guanm-9-yl, cytosm-l-yl, uracιl-1-yl, each of which is unsubstituted or substituted by at least one of NHR3, Ci-ealkyl, -OCi- 6alkyl, Br, Cl, F, I or OH, wnerem R3 is H, Cι-6alkyl or Cι-6acyl .
In a further embodiment, B is cytosm-l-yl, which is unsuostituted or substituted by at least one of NHR3, C- βalkyl, Br, Cl, F, I or OH, wherein R3 is H, Ci-βalkyl or Cι-6acyl .
In a further embodiment, B is guanm-9-yl, which is unsubstituted or substituted by at least one of NHR3, Cι_ 6alkyl, Br, Cl, F, I or OH, wherem R3 is H, Cι-δalkyl or Cx-6acyl .
In a further embodiment, B is uracιl-1-yl, which is unsubstituted or substituted by at least one of NHR3, Cι_ ealkyl, Br, Cl, F, I or OH, wherem R3 is H, Ci-εalkyl or Cι-6acyl.
In one embodiment, B is chosen from adenm-9-yl, guanin- 9-yl, mosm-9-yl, 2-ammo-purm-9-yl, 2-ammo-6-chloro- purm-9-yl, 2-6-dιammo-purm-9-yl, thymm-l-yl, cytosm- l-yl, 5-fluoro-cytosm-1-yl, uracιl-1-yl, 5-fluorouracil or 1, 2 , 4-tπazole-3-carboxamιde base (ribaπvm base).
In one embodiment, B is chosen from adenm-9-yl, guanin- 9-yl, mosm-9-yl, 2-ammo-purm-9-yl, 2-ammo-β-chloro- purm-9-yl, 2-β-dιammo-purm-9-yl, thymm-l-yl, cytosm- l-yl, 5-fluoro-cytosm-1-yl, uracιl-1-yl, or 1,2,4- tπazole-3-carboxamιde base (ribaπvm base).
In one embodiment, B is chosen from guanm-9-yl, cytosm- l-yl, 5' -fluoro-cytosm-1-yl, 5' -fluorouracil -1-yl or uracιl-1-yl . In one embodiment, B is chosen from guanin-9-yl, cytosin- 1-yl, 5' -fluoro-cytosin-1-yl, 5' -fluorouracil -1-yi or uracil-1-yl .
In one embodiment, B is cytosin-1-yl .
In one embodiment, B is 5-fluoro-cytosin-1-yl .
In one embodiment, B is 5-fluorouracil .
In one embodiment, B is guanin-9-yl.
In one embodiment, B is uracil-1-yl.
In a further embodiment, B is
Wherein;
X is H, halogen or NHR10 , wherein Rio is H, Ci-βacyl, C_6 alkyl, C2-6 alkenyl, or C2-6 alkynyl;
Y is H, halogen or NHRn , wherein Ru is H, Ci-βacyl, Cι_6 alkyl, C2-6 alkenyl, or C2-6 alkynyl;
Y2 is H, halogen or NHR12 , wherein R12 is H, Ci-βacyl, Cι_6 alkyl, C2-6 alkenyl, or C2_6 alkynyl; Rg is H, hydroxy protecting group, Ci-βacyl, C__. alkyl, C2-D alkenyl, or C2-e alκynyl;
Y3 is H, halogen or NHRi3 , wherem Ri3 is H, C__κacyl, Cι_6 alkyl, C2-6 alkenyl, or C2-e alkynyl;
R7 is H, halogen, C_-5acyl, Cι-6 alkyl, C2-6 alkenyl, or C2-D alkynyl;
Rg is H, halogen, Ci-βacyl, Cι_6 alkyl, C2-6 alkenyl, or C2-β alkynyl .
In one embodiment,
X is H, halogen or NHR10 , wherem Rio is H. Y is H, halogen or NHRn , wherem Rn is H. Y2 is H, halogen or NHRi2 , wherem Rι2 is H. R9 is H, hydroxy protecting group, Cι-b alkyl. Y3 is H, halogen or NHRι3 , wherem Ri3 is H. R7 is H, halogen, or Cχ-6 alkyl. R8 is H, halogen or Cι_6 alkyl.
In a further embodiment,
X is H, F, or NHRio , wherem Rio is H.
Y is H, F, or NHRn , wherem Rπ is H.
Y2 is H, F, or NHR12 , wherem Ri2 is H.
R is H.
Y3 is H, F, or NHR13 , wherem R13 is H.
R7 is H, F, or Cι_6 alkyl.
R8 is H, F, or Cι-6 alkyl.
In one embodiment of the invention, Ra is chosen from H, monophosphate, diphosphate, and triphosphate.
In another embodiment of the invention, Ra is K. In one embodiment, Z is F or ORb, wnerem Rb is chosen from of H, C._6 alkyl, C2-β alkenyl, C2-6 alkynyl, C x-6 acyl, or an nyαroxy protecting group. In one embodiment, Z is F.
In one embodiment, Z is ORb, wherem Rb is chosen from of H, Ci-e alkyl, C2-6 alkenyl, C2-6 alkynyl, C ι_6 acyl, or an hydroxy protecting group.
In one embodiment, Z is ORb, wherem Rb is chosen from of H, Cι-6 alkyl, or an hydroxy protecting group. In one embodiment, Z is ORb, wherem Rb is chosen from of H, or methyl. In one embodiment, Z is ORb, wherem Rb is H.
Di and D2 are independently selected from N3, F, or H , Dx and D2 can also be joined to be chosen from cyclopropyl, difluorocyclopropyl -=CH2, or -=CF2.
Di and D2 are independently selected from F, or H , Di and
D2 can also be joined to be chosen from cyclopropyl, difluorocyclopropyl -=CH2, or -=CF2. Di and D2 are joined and are cyclopropyl.
Di and D2 are joined and are difluorocyclopropyl .
Di and D2 are joined and are -=CH2.
Di and D2 are joined and are-=CF2.
In one embodiment, Di is H or F.
In one embodiment, D2 is H or F.
In one embodiment, Dx is H.
In one embodiment, D2 is H.
In one embodiment, Di is F.
In one embodiment, D2 is F. In one embodiment, Di is N3 and D2 is H.
In one embodiment, Di is H and D2 is N3
In one embodiment, Di is N3 and D2 is F.
In one embodiment, Di is F and D2 is N3.
In one embodiment, Di is H and D is F. In one embodiment, Di is F and D2 is H.
In one embodiment, Di and D2 are H.
In one embodiment, Di and D2 are F.
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleosioe analogues in a host comprising administering a therapeutically effective amount of a compound having the formula lb or a pharmaceutically acceptable salt thereof:
wherem Ra, B, Di, D2 and Z are as defined above.
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues in a host comprising administering a therapeutically effective amount of a compound having the formula Ic or a pharmaceutically acceptable salt thereof:
wherem Ra, B, Di , D2 and Z are as defined above In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues m a host comprising administering a therapeutically effective amount of a compound having the formula Id or a pharmaceutically acceptable salt thereof:
(Id)
wherem Ra, B, Di, D2 and Z are as defined above. In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues m a host comprising administering a therapeutically effective amount of a compound having the formula Ie or a pharmaceutically acceptable salt thereof:
!le)
wherem Ra, B, Di, D2 and Z are as defined above.
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues m a host comprising administering a therapeutically effective amount of a compound having the formula If or a pharmaceutically acceptable salt thereof:
( i f :
where Ra, B, and Z are as defined above.
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues in a host comprising administering a therapeutically effective amount of a compound having the formula Ig or a pharmaceutically acceptable salt thereof:
(ig)
wherem Ra, B, and Z are as defined above,
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues in a host comprising administering a therapeutically effective amount of a compound having the formula Ih or a pharmaceutically acceptable salt thereof:
(Ih) wherem Ra, B, and Z are as defined aoove .
In a further embodiment, the present invention relates to a method for the treatment or prevention of Flavivirus infections using nucleoside analogues in a host comprising administering a therapeutically effective amount of a compound having the formula Ii or a pharmaceutically acceptable salt thereof:
wherem Ra, B, and Z are as defined above.
In one embodiment, a compound of formula (I) is chosen from:
It will be appreciated by those skilled in the art that the compounds of formula (I) contain at least three chiral centres and which are marked by 1, 2 and 3. When Dl and D2 are different, the compounds of formula (I) contain at least four chiral centres which are marked by 1, 2, 3 and 4. The compounds of formula (I) thus exist in the form of different optical isomers (e.g β-L and β- D) and geometric isomers trans or α and cis or β. All such enantiomers, geometric isomers and mixtures thereof including racemic mixtures are included within the scope of the invention. The single optical isomer or enantiomer can be obtained by method well known in the art, such as chiral HPLC, enzymatic resolution and the use of chiral auxiliary.
According to one embodiment, the atoms marked by 1 and 2 are in the cis or β configuration.
According to one embodiment, the atoms marked by 1 and 2 are m the cis or β configuration while the atom marked by 3 is in a trans or α configuration with respect to the atom 1 and 2.
According to one embodiment, compounds of formula I of the present invention are provided substantially in the form of the β-D configuration. According to one embodiment, compounds of formula I of the present invention are provided substantially in the form of the β-L configuration.
By "substantially" is meant that there is more one enantiomer then of the other enantiomer.
In another embodiment, the compounds of formula I of the present invention are at least 95% free of the correspondmg β-D enantiomer.
In another embodiment, the compounds of formula I of the present invention are at least 97% free of the corresponding β-D enantiomer.
Still in another embodiment, the compounds of formula I of the present invention are at least 99% free of the corresponding β-D enantiomer.
In another embodiment, the compounds of formula I of the present invention are at least 95% free of the corresponding β-L enantiomer.
In another embodiment, the compounds of formula I of the present invention are at least 97% free of the corresponding β-L enantiomer.
Still in another embodiment, the compounds of formula I of the present invention are at least 99% free of the corresponding β-L enantiomer.
There is also provided pharmaceutically acceptable salts of the compounds of formula I of the present invention. By the term pharmaceutically acceptable salts of the compounds of formula (I) are meant those derived from pnarmaceutically acceptable inorganic and organic acids and bases. Examples of suitable acids include hydrochloric, hydrobromic, sulphuric, nitric, perchloric, fumaπc, maleic, phospnoπc, glycollic, lactic, salicylic, succmic, toluene-p-sulphonic, tartaric, acetic, citric, methanesulphonic, formic, benzoic, malonic, naphthalene-2-sulphonιc and benzenesulphonic acids .
Salts derived from appropriate bases include alkali metal (e.g. sodium), alkaline eartn metal (e.g. magnesium), ammonium and NR4+ (where R is C _4 alkyl) salts.
Unless otherwise defined, ail technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference m their entirety. In case of conflict, the present specification, including definitions, will control. In addition, the materials, methods, and examples are illustrative only and not intended to be limiting.
As used n the present application, "compound (s) of formula (I)" refers to all compounds identified by formula (I) and formulae (la) to (Ii) .
As used in this application, the term "purine or pyrimidme or an analogue thereof" is meant a purine or pyrimidme base found in nucleotide or an analogue thereof which mimics such bases m that their structures (the kinds of atoms and their arrangement) are similar to the normal bases but may possess additional or lack certain of the functional properties of the normal bases. Such analogues include those derived by replacement of a CH moiety by a nitrogen atom (for example, 5- azapyrimidmes such as 5-azacytosme) or vice versa (for example 7-deazapurmes, such as 7-deazadenosme or deazaguanosme) or both (e.g. 7-deaza, 8-azapurmesy . Analogues of such oases also include those compounds wherem ring substituents are either incorporated, removed or modified by conventional substituents known the art e.g. halogen, hydroxyl, ammo, Cl-6 alkyl. Sucn purine or pyrimidme base, analogues and derivatives will be well known to those skilled m the art.
As used in this application, the term "alkyl" represents an unsubstituted or substituted (by a halogen, nitro, CONH2, COOH, O-C1-6 alkyl, 0-C2-6 alkenyl, 0-C2.6 alkyny-., hydroxyl, ammo, or COOQ, wherem Q is Cι_6 alkyl; C2-6 alkenyl; C2-6 alkynyl) straight chain, branched chain or cyclic hydrocarbon moiety (e.g. isopropyl, ethyl, fluorohexyl or cyclopropyl) . The term alkyl is also meant to include alkyls m which one or more hydrogen atoms is replaced by an halogen, more preferably , the halogen is fluoro (e.g. CF3- or CF3CH2-) .
As used in this application, the term "cycloalkyl" represents an "alkyl" as defined above which forms a ring.
The terms "alkenyl" and "alkynyl" represent an alkyl containing at least one unsaturated group (e.g. allyl).
The term "hydroxy protecting group" is well known in tne field of organic chemistry. Such protecting groups may oe found m T. Greene, Protective Groups In Organic Synthesis, (John Wiley & Sons, 1981) . Example of hydroxy protecting groups include but are not limited to acetyl- 2-thιoethyl ester, pivaloyloxymethyl ester and isopropyloxycarbonyloxymethyl ester . The term "aryl" represents an unsaturated carbocyclic moiety, optionally mono- or di-substituted with OH, SH, ammo, halogen or Cι_6 alkyl.
The term "heteroaryl" represents an aryl wherem at least one carbon ring atom is substituted oy an heteroatom (e.g. N, 0, or S) .
The term "ammoalkyl" represents an alkyl which is covalently bonded to the adjacent atom through a nitrogen atom.
The term "th oalkyl" represents an alkyl which is covalently bonded to the adjacent atom through a sulfur atom.
The term "alkoxy" represents an alkyl which is covalently bonded to the adjacent atom through an oxygen atom.
Halogen are chosen from F, Cl, I, and Br.
The term "host" represents any mammals including humans.
In one embodiment, the host is human.
The compounds of the present invention are can be prepared by methods well known in the art. For example, such methods are described in the following references J. Med . Chem . 1991, 34, 693-701; Chem . Pharm . Bull . 1995, 43(11) 2005-2009; J. Org. Chem . 1989, 54, 631-635; Can . J. Chem . 1975, 53(19), 2975-2977; Nucleosides
Nucl eo tides , 1990, 9(8), 1045-60 and Chemi s try of Nucl eosides and Nucl eotides edited by Leroy B.Towsend, 1988 Plenum Press Volumes 1 and 2; Synthesis of 2 ' -β- fluoro- and 3 ' -β-fluoro-substituted guanme nucleosides. 0315
Effect of sugar conformational sπifts on nucleophilic displacement of the 2 ' -hydroxy and 3 ' -hydroxy group with DAST. J. Org. Chem. , 57(26), (1992) 7315-21. Synthesis and antiviral and cytostatic properties of ' -deoxy-3 ' - fluoro- and 2 ' -azιdo-3 ' -fluoro-2 ' , 3 ' -dideoxy-D- πbofuranosides of natural heterocyclic bases. J. Med. Chem. , 34(7), (1991) 2195-202. Synthesis of 9-(3-deoxy- 3-fluoro-β-D-πbofuranosyl) guanme, a new potent antiviral agent. J. Chem. Soc, Chem. Commun. (1989) (1989), (14), 955-7. Synthesis and antiviral activity evaluation of 3 ' -fluoro-3 ' -deoxyπbonucleosides : broad- spectrum antiviral activity of 3 ' -fluoro-3 ' - deoxyadenosme. Antiviral Res. (1989), 12(3), 133-50. 3'- Fluoro-3 ' -deoxyribonucleoside 5 ' -triphosphates : synthesis and use as terminators of RNA biosynthesis. FEBS Lett.
(1989), 250(2), 139-41. Reaction of 1- (2 ' , * -epoxy-β-D- lyxofuranosyl) uracil with hydrogen fluoride. The unexpected formation of 1- (3 ' -fluoro-3 ' -deoxy-β-D- ribofuranosyl) uracil. J. Heterocycl . Chem. (1984), 21(3), 773-5. Synthesis of 3 ' -deoxy-3 ' -fluorouπdine. J. Carbσhydr., Nucleosides, Nucleotides (1975), 2(3), 191-5. Synthesis of the 2 ' -deoxy-2 ' -fluoro and 3' -deoxy-3 '- fluoro analogs of 8-bromoadenosme. Nucleic Acids Symp. Ser. (1997), 37 (Symposium on Nucleic Acids Chemistry, 1997), 17-18. Synthesis of 8-substιtuted analogs of 3'- deoxy-3 ' -fluoroadenosme. Nucleosides Nucleotides (1998), 17(1-3), 115-122. A new synthesis of 3 ' -fluoro-3 ' - deoxyadenosme. Nucleosides Nucleotides (1991), 10(1-3), 719-21. Synthesis of 3 ' -fluoro-3 ' -deoxyadenosme starting from adenosme. Synthesis (1990), (10), 900-5. Synthesis of 3 ' -deoxy-3 ' -fluoroadenosme by chemical transglycosidation. Z. Chem. (1989), 29 ( 6) , 2C9-10. Stereoselective synthesis of 3 ' -deoxy-3 ' -fluoroadenosme. Bull. Chem. Soc. Jpn. (1989), 62 ( 6) , 2119-20. Synthesis of nucleosides fluorinated in the sugar rroαety. The application of diethylammosulfur trifluoπde to the synthesis of fluorinated nucleosides. Nucleosides Nucleotides (1989), 8(1), 65-96. Preparation of difluorouridmes as antitumor agents. Efficient removal of sugar O-tosyl groups and heterocycle halogens from purine nucleosides with sodium naphthalenide. Tetrahedron (1997), 53(18), 6295-6302. Synthesis of fluoro and azido derivatives of purine nucleosides from nucleoside 2 ',3'- cyclic sulfates. Bioorg. Khim. (1994), 20(11), 1226-30. Synthesis of modified oligomeπc 2' -5' A analogs: potential antiviral agents. Helv. Chim. Acta (1991), 74(1), 7 -23. Diethylammosulfur trifluoπde (EAST) as a fluorinatmg agent of pyrimidme nucleosides having a 2 ' , 3 ' -vicinal diol system. Chem. Pharm. Bull. (1990), 38(5), 1136-9. Synthesis of 9- (3-deoxy- and 2,3-dιdeoxy- 3-fluoro-β-D-xylofuranosyl) guanines as potential antiviral agents. Tetrahedron Lett. (1989), 30(24), 3171- 4. Synthesis and anti-HIV activity of various 2'- and 3'- substituted 2 ' , 3 ' -dideoxyadenosines : a structure-activity analysis. J. Med. Chem. (1987), 30(11), 2131-7. Adenosme 2 ' , 3 ' -πbo-epox de . Synthesis , intramolecular degradation, and transformation into 3 ' -substituted xylofuranosyl nucleosides and the lyxo-epoxide . J. Org. Chem. (1974), 39(11), 1564-70. Fluoro sugar analogs of arabinosyl- and xylosylcytosines . J. Med. Chem. (1970), 13(2), 269-72. 9- (3 -Deoxy- 3 -fluorc-β-D- xylofuranosyl) adenme and 9- (3-deσxy-3-fluoro-β-D- arabinofuranosyl) adenine. Carbohyd. Res. (1968), 6(3), 347-54. 3 ' ,3 ' -Difluoro-3 ' -deoxythymidme: comparison of anti-HIV activity to 3 ' -fluoro-3 ' -deoxythymidme . J. Med. Chem. (1992), 35(18), 3369-72. Nucleic acid related compounds. 83. Synthesis of 3 'deoxyadenosme-3 ' - spirocyclopropane, 3 ' -deoxyurιdιne-3 ' -spirocycloprcpane, and 5 ' -deoxy-4 ' , 5 ' -methanoadenosine . Tetrahedron Lett . (1994), 35(21), 3445-8. Synthesis of 2 ' , 3 ' -didehydro- 2 ' , 3 ' -dideoxy-3 ' -C-methyl substituted nucleosides. Nucleosides Nucleotides (1993), 12(8), 865-77. 2', '- Didehydrc-2 ' , 3 ' -dideoxy-2 ' (and3 ' ) - ethylnucleosides via [3, 3] -sigmatropic rearrangements of 2 ' (and 3 ' ) -methylene- 3 ' (and 2 ' ) -O-thiocarbonyl derivatives and radical reduction of a 2 ' -chloro-3 ' -methylene analog. Can. J. Chem. (1993), 71(2), 186-91. Synthesis and biological activity of 2 ' (and 3 ' ) -deoxy-2 ' (and 3')- methylenenucleoside analogs that function as mechanism- based inhibitors of S-adenosyl-L-homocysteine hydrolase and/or ribσnucleotide reductase. J. Med. Chem. (1992), 35(12), 2283-93.Synthesis and anticancer and antiviral activities of various 2'- and 3 ' -methylidene-substituted nucleoside analogs and crystal structure of 2' -deoxy-2 '- methylidenecytidine hydrochloride . J. Med. Chem. (1991), 34(8), 2607-15. Stereoselective addition of a ittig reagent to give a single nucleoside oxaphospetane diastereoisomer. Synthesis of 2 ' (and 3 ') -deoxy-2 ' (and 3 ' ) -methyleneuridine (and cytidine) derivatives from uridine etonucleosides . Synthesis (1991), (4), 282-8. A novel example of unsaturated branched chain sugar nucleoside: 3 ' -deoxy-3 ' -methylideneadenosine. Helv. Chim. Acta (1981), 64(2), 425-9. Synthesis of 2 ' (and 3 ' ) -deoxy- 2 ' (and 3 ' ) -methyleneadenosines and bis (methylene) furan 4 ' , 5 ' -didehydro-5 ' -deoxy-2 ' (and 3 ' ) -methyleneadenosines . Inhibitors of S-adenosyl-L-homocysteine hydrolase and ribonucleotide reductase. J. Org. Chem. (1991), 56(25), 7108-13. Radical and palladium-catalyzed deoxygenation of the allylic alcohol systems in the sugar moiety of pyrimidine nucleosides. Nucleosides Nucleotides (1992), 11(2-4), 197-226. Synthesis and NMR spectra of some new carbohydrate modified uridine phosphoramidites. Nucleosides Nucleotides (1997), 16(7-9), 1529-1532. New method for the preparation of 3 ' - and 2 ' -phosphoramidites of 2'- and 3 ' -difluoromethyleneuridine. Tetrahedron (1996), 52(23), 7929-7938. Nucleic acid related compounds. 83. Synthesis of 3 'deoxyadenosme- 3 ' - spirocyclopropane, 3 ' -deoxyuridine-3 ' -spirocyclopropane, and 5 ' -deoxy- ' , 5 ' -methanoadenosine . Some compounds of the present invention are commercially available at Sigma or Aldrich.
According to one embodiment, it will be appreciated that the amount of a compound of formula I of the present invention required for use in treatment will vary not only with the particular compound selected but also with the route of administration, the nature of the condition for which treatment is required and the age and condition of the patient and will be ultimately at the discretion of the attendant physician or veterinarian. In general however a suitable dose will be in the range of from about 0.01 to about 750 mg/kg of body weight per day, preferably in the range of 0.5 to 60 mg/kg/day, most preferably in the range of 1 to 20 mg/kg/day.
The desired dose according to one embodiment is conveniently presented in a single dose or as divided dose administered at appropriate intervals, for example as two, three, four or more doses per day.
In another embodiment, the compound is conveniently administered in unit dosage form; for example containing
10 to 1500 mg, conveniently 20 to 1000 mg, most conveniently 50 to 700 mg of active ingredient per unit dosage form.
According to another embodiment of the present invention, the active ingredient is administered to achieve peak plasma concentrations of the active compound of from about 1 to about 75μM, preferably about 2 to 50 μM, most preferably about 3 to about 30 μM. This may be achieved, for example, by the intravenous injection of a 0.1 to 5% solution of the active ingredient, optionally in saline, or orally administered as a bolus containing about 1 to about 500 mg of the active ingredient. Desirable blood levels may be maintained by a continuous infusion to provide about 0.01 to about 5.0 mg/kg/hour or by intermittent infusions containing about 0.4 to about 15 mg/kg of the active ingredient.
While it is possible that, for use m therapy, a compound of formula I of the present invention may be administered as the raw chemical, it is preferable according to one embodiment of the invention, to present the active ingredient as a pharmaceutical formulation. The embodiment of the invention thus further provides a pharmaceutical formulation comprising a compound of formula (I) or a pharmaceutically acceptable salt thereof together with one or more pharmaceutically acceptable carriers therefor and, optionally, other therapeutic and/or prophylactic ingredients. The carrier (s) must be "acceptable" m the sense of being compatible with the other ingredients of the formulation and not deleterious to the recipient thereof.
According to one embodiment of the present invention, pharmaceutical formulations include but are not limited to those suitable for oral, rectal, nasal, topical (including buccal and sub-lingual), transdermal, vaginal or parenteral (including intramuscular, sub-cutaneous and intravenous) administration or in a form suitable for administration by inhalation or insufflation. The formulations may, where appropriate, be conveniently presented m discrete dosage units and may be prepared by any of the methods well known m the art of pharmacy. All methods according to this embodiment include the step of bringing into association the active compound with liquid carriers or finely divided solid carriers or botn and then, if necessary, shaping the product into the desired formulation .
According to another embodiment, pharmaceutical formulation suitable for oral administration are conveniently presented as discrete units such as capsules, cachets or tablets each containing a predetermined amount of the active ingredient; as a powder or granules. In another embodiment, the formulation is presented as a solution, a suspension or as an emulsion. Still m another embodiment, the active ingredient is presented as a bolus, electuary or paste. Tablets and capsules for oral administration may contain conventional excipients such as binding agents, fillers, lubricants, dismtegrants, or wetting agents. The tablets may be coated according to methods well known in the art. Oral liquid preparations may be in the form of, for example, aqueous or oily suspensions, solutions, emulsions, syrups or elixirs, or may be presented as a dry product for constitution with water or other suitable vehicle before use. Such liquid preparations may contain conventional additives such as suspending agents, emulsifying agents, non-aqueous vehicles ..whicr may include edible oils), or preservatives.
The compounds of formula I according to an embodiment of the present invention are formulated for parenteral administration (e.g. by injection, for example bolus injection or continuous infusion) and may be presented m unit dose form in ampoules, pre-filled syringes, small volume infusion or in multi-dose containers witn an added preservative. The compositions may take such forms as suspensions, solutions, or emulsions in oily or aqueous vehicles, and may contain formulatory agents such as suspending, stabilizing an/or dispersing agents. Alternatively, the active ingredient may be in powder form, obtained by aseptic isolation of sterile solid or by lyophilisation from solution, for constitution with a suitable vehicle, e.g. sterile, pyrogen-free water, before use.
For topical administration to the epidermis, the compounds of formula I, according to one embodiment of the present invention, are formulated as ointments, creams or lotions, or as a transdermal patch. Such transdermal patches may contain penetration enhancers such as linalool, carvacrol, thymol, citral, menthol and t-anethole. Ointments and creams may, for example, be formulated with an aqueous or oily base with the addition of suitable thickening and/or gelling agents. Lotions may be formulated with an aqueous or oily base and will in general also contain one or more emulsifying agents, stabilizing agents, dispersing agents, suspending agents, thickening agents, or colouring agents.
Formulations suitable for topical administration in the mouth include lozenges comprising active ingredient in a flavoured base, usually sucrose and acacia or tragacanth; pastilles comprising the active ingredient in an inert base such as gelatin and glycerin or sucrose and acacia; and mouthwashes comprising the active ingredient in a suitable liquid carrier.
Pharmaceutical formulations suitable for rectal administration wherein the carrier is a solid. In another embodiment, they are presented as unit dose suppositories. Suitable carriers include cocoa butter and other materials commonly used in the art, and the suppositories may be conveniently formed by admixture of the active compound with the softened or melted carrier(s) followed by chilling and shaping in moulds. According to one embodiment, the formulations suitable for vaginal administration are presented as pessaries, tampons, creams, gels, pastes, foams or sprays containing in addition to the active ingredient such carriers as are known in the art to be appropriate.
For mtra-nasal administration the compounds, m one embodiment of the invention, are used as a liquid spray or dispersible powder or m the form of drops. Drops may be formulated with an aqueous or non-aqueous base also comprising one more dispersing agents, solubilismg agents or suspending agents. Liquid sprays are conveniently delivered from pressurized packs.
For administration by inhalation the compounds, according to one embodiment of the invention are conveniently delivered from an insufflator, nebulizer or a pressurized pack or other convenient means of delivering an aerosol spray. In another embodiment, pressurized packs comprise a suitable propellant such as dichlorodifluoromethane, tπchlorofluoromethane, dichlorotetrafluoroethane, carbon dioxide or other suitable gas. In another embodiment, the dosage unit m the pressurized aerosol is determined by providing a valve to deliver a metered amount.
Alternatively, in another embodiment, for administration by inhalation or insufflation, the compounds of formula I according to the present invention are m the form of a dry powder composition, for example a powder mix of the compound and a suitable powder base such as lactose or starch. In another embodiment, the powder composition is presented in unit dosage form in, for example, capsules or cartridges or e.g. gelatin or blister packs from which the powder may be administered with the aid of an mhalator or insufflator. In one embodiment, the above described formulations are adapted to give sustained release of the active ingredient .
The compounds of the invention may also be used in combination with other antiviral agents.
In one embodiment, the compounds of the invention may be employed together with at least one other antiviral agent chosen from protease inhibitors, polymerase inhibitors, and helicase inhibitors.
As used in this application, the term "mterferon" include: mterferon likes molecules such as mterferon (IFN), mterferon α-2a, mterferon α-2b, consensus mterferon (CIFN) and other types of interferons .
In one embodiment , the compounds of the invention may be employed together with at least one other antiviral agent chosen from mterferon (IFN), mterferon α-2a, mterferon α-2b, consensus mterferon (CIFN) , πbavirm, amantadme, πmantadme, mterleukme-12 , ursodeoxycholic acid (UDCA) , glycyrrhizin and silybum marianum.
In one embodiment, the compounds of the invention may be employed together with at least one other antiviral agent chosen from Interferon-α, Ribavirm and Amantadme.
In one embodiment, the compounds of the invention may be employed together with at least one other antiviral agent chosen from Interferon- and Ribavirm (REBETRON) .
In one embodiment, the compounds of the invention may be employed together Interferon-α. In one embodiment, tne compounds of the invention may be employed together with Ribavirm.
The combinations referred to above may conveniently be presented for use m the form of a pharmaceutical formulation and thus pharmaceutical formulations comprising a combination as defined above together with a pharmaceutically acceptable carrier therefor comprise a further aspect of the invention.
The individual components of such combinations may be administered either sequentially or simultaneously in separate or combined pharmaceutical formulations.
When the compound (I) or a pharmaceutically acceptable salts thereof is used in combination with a second therapeutic agent active against the same virus the dose of each compound may be either the same as or differ from that when the compound is used alone.
Appropriate doses will be readily appreciated by those skilled m the art.
The following examples are provided to illustrate various embodiments of the present invention and shall not be considered as limiting in scope.
Example 1. Preparation of 3' -DEOXYCYTIDINE 5' - TRIPHOSPHATE TRIAMMONIUM SALT (Compound #2)
Procedure: To a stirring suspension of 3' -deoxy-2' - acetoxycytidine (15.0 mg, 0.056 mmol) in dry DMF (0.60 ml) was added dry pyridine (0.20 ml) followed by a freshly prepared solution of 2-chloro-4 K-1,3,2- benzodioxaphosphorin-4-one 0.5 M in 1,4-dioxane (111 μl, 0.056 mmol) . The mixture was stirred 30 minutes at room temperature, then tributylamine (36 μl, 0.152 mmol) and a solution of tributylammonium pyrophosphate 0.5 M in C F (101 μl, 0.051 mmol) were added simultaneously. The mixture was stirred another 30 minutes. A solution of 12 1% in pyridine/H20 (98 :2) (1.01 ml, 0.081 mmol of I) was added and the mixture was stirred 30 minutes. The excess of iodine was destroyed by adding 0.2 ml of aqueous sodium bisulfite 5%. The mixture was stirred 15 minutes, then it was concentrated under reduced pressure to remove all solvents. The residue was dissolved in water, washed two times with methylene chloride and once with ethyl acetate. The aqueous layer was concentrated and purified by charcoal column as follow: about 400 mg of charcoal, placed over a thin layer of Celite in a funnel with fritted disk, was prewashed by passing methanol, then deionized water (by vaccuum) . The crude residue was diluted in a minimum of water, acidified to pH 1-2 oy adding few drops of HC1 IN, then placed on the top of the charcoal column. The column was eluted with deionized water (35 ml) in order to remove inorganic salts, then 0.5 N ammonia (15 ml) to collect the desired triphosphate. The collected triphophate was concentrated and diluted in deionized water (1 ml) and concentrated NH40H (2 ml) . The mixture was stirred one hour at room temperature to cleave the acetyl group, then concentrated to dryness. The residue was purified on a pad of C18 RP silica gel eluting with deionized water (the desired triphosphate comes out fast). The fractions containing the desired triphosphate were collected and lyophilized to give the 3' -deoxycytidine 5' -triphosphate triammonium salt as a yellowish solid (18 mg, 69% yield, purity >85% evaluated by IH and 31P-NMR) . IH NMR (400 MHz, D20) δ: 7.90 (d, 1 H, 7.5 HZ), 5.99 (d, 1 H, 7.5 Hz) , 5.73 (s, 1 K) , 4.55 (s, i H) , 4.35 (d, 1 H, 5.0 Hz), 4.26 (m, 1 H) , 4.04 (m, 1 H) , 2.05 (m, 1 H) , 1.94 (m, 1 H) ppm. 31P NMR (162 MHz, D20) 5: -5.9 (br.s), -10.4 (d, 19 Hz), -21.5 (br.s) ppm. In a similar manner, the compounds of the invention can be obtained.
Example 2. Evaluation of Triphosphate Analogues In The HCV RNA-Dependent RNA Polymerase AssayThe following references which are referenced in the example are all incorporated by reference:
1. Behrens, S., To ei, L. , De Francesco, R. (1996) EMBO 15, 12-22
2. Harlow, E, and Lane, D. (1988) An iJbodies; A Laboratory Manual . Cold Spring Harbord Laboratory. Cold Spring Harbord. NY. 3. Lohmann, V., Kόrner, F. , Herian, U. , and Bartenschlager, R. (1997) J". Virol. 71, 8416-8428
Compounds were evaluated using an in vi tro polymerase assay containing purified reσombinant HCV RNA-dependent RNA polymerase (NS5B protein) . HCV NS53 was expressed insect cells using a recombinant baculovirus as vector. The experimental procedures used for the cloning, expression and purification of the HCV NS5B protein are described below. Following are details of the RNA- dependent RNA polymerase assays used to test the compounds .
Expression of the HCV NS5B protein in insect cells;
The cDNA encoding the entire NS5B protein of HCV-3k strain, genotype lb, was amplified by PCR using a plasmid containing a cDNA version cf the full-length HCV genome as template. The oligonucleotides used to amplify this HCV region were designed to introduce a Nhel site followed by an ATG at the 5' end of the NS5B coding region as well as a BamHI site at the 3' end immediately downstream of the translation stop codon. The amplified sequence, of 1.8 kb, was digested with hel and BamHI and ligated to a predigested pBlueBacII plasmid (Invitrogen) . The resulting recombmant plasmid was designated pBac/NS5B. Sf9 cells were co-transfected with 3 μg of pBac/NS5B, together with 1 μg of linearized baculovirus DNA (Invitrogen), as described in the manufacturer's protocol. Following two rounds of plaque purification, an NS5B-recombιnant baculovirus, BacNS5B, was isolated. The presence of the recombmant NS5B protein was determined by western blot analysis (Harlow and Lane, 1988) of BacNS5B-mfected Sf9 cells, using a HCV NS5B specific rabbit polyclonal antiserum (antι-NS5B) . Infections of Sf9 cells with this plaque purified virus were performed in one-liter spmner flasks at a cell density of 1.2 x 10° cells/ml and a multiplicity of infection of 5.
Preparation of a soluble recombinant NS5B protein :
Sf9 cells were infected as described above. Sixty hours post-mfection, cells were harvested then washed twice with phosphate buffer saline (PBS). Total proteins were solubilized as described in Lohmann et al . (1989) with some modifications. In brief, proteins were extracted m three steps, SI, S2, S3, using lysis buffers (LB) I, LB II and LB III (Lohmann et al, 1997). The composition of LBII was modified to contain 0.1 % tπton X-100 and 150 mM NaCl to reduce the amount of solubilized NS5B protein at this step. In addition, somcation of cell extracts was avoided throughout the protocol to preserve the integrity of the protein structure. Purification of recombinant NS5B using fast protein liquid chromatography (FPLC) :
Soluble NS5B protein in the S3 fraction was diluted to lower the NaCl concentration to 300 mM, then it incubated batchwise with DEAE sepharose beads (Amersham-Pharmacia) for 2 hrs at 4°C, as described by Behrens et al . (1989). Unbound material was cleared by centrifugation for 15 min at 4°C, at 25 000 rpm using a SW41 rotor (Beck an) . The supernatant was further diluted to lower the NaCl concentration to 200 mM and subsequently loaded, with a flow rate of 1 ml/min, on a 5 ml HiTrap® heparin column (Amersham-Pharmacia) connected to an FPLC" system (Amersham-Pharmacia) . Bound proteins were eluted in 1 ml fractions, using a continuous NaCl gradient of 0.2 to 1 M, over a 25 ml volume. NS5B-containing fractions were identified by sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) , followed by western blotting using the anti-NS5B antiserum at a dilution of 1:2000. Positive fractions were pooled and the elution buffer was exchanged against a 50 mM NaP0 pH 7.0, 20 % glycerol, 0.5 % triton X-100 and 10 mM DTT, using a PD-10 column (Amersham-Pharmacia) . The sample was then loaded onto a 1 ml HiTrap® SP column (Amersham-Pharmacia) , with a flow rate of 0.1 ml/min. Bound proteins were eluted using a continuous 0 to 1 M NaCl gradient over a 15 ml volume. Eluted fractions were analyzed by SDS-PAGE and western blotting. Alternatively, proteins were visualized, following SDS-PAGE, by silver staining using the Silver Stain Plus kit (BioRad) as described by the manufacturer. Positive fractions were tested for RdRp activity (see below) and the most active ones were pooled, and stored as a 40 % glycerol solution at -70°C.
In vitro RNA-dependent RNA polymerase assays used to evaluate the triphosphate form of nucleoside analogues : RdRp assays were conducted using m vi tro transcribed heteropolymeric RNA templates.
RdRp reactions were performed in a total volume of 50 μl of a buffer consisting of 20 mM Tris-HCl pH 7.5, 1 mM DTT, 50 mM NaCl, 0.5 mM MnCl2 and 5 mM MgCl2. Standard HCV RdRp reactions contained 200 ng of purified NS53 protein. The suostrate mixture included m the assay depended on the base of the nucleoside triphosphate to be tested (adenme, guanme, cytosine or uracil analogue) . The NTP substrate with a similar base to that of the inhibitor, was added at twice the measured Km. This concentration included 5 μCi (3000 Ci/mmol) of a [ 32P] version of this nucleotide. The remaining three substrates were used at 100 μM. The measured Kms for the four substrates were as follows: 18 μM for ATP, 0.5 μM for CTP and GTP, and 1.2 μM for UTP. Following a two hour incubation at 22°C, reactions were stopped by the addition of 100 μg of sonicated salmon sperm DNA (Life Technologies) and 1 ml of 10 % trichloroacetic acid (TCA)-0.5 % tetrasodium pyrophosphate (PPi). Nucleic acids were precipitated at 4°C for 30 mm after which samples were filtered on GF/C glass microfiber filters (Millipore). Membranes were subsequently washed with 25 ml of a 1% TCA-0.1 % PPi solution, then air dried. Incorporated radioactivity was quantified using a liquid scintillation counter ( 1450-Mιcrobeta, Wallac) . Heteropolymeric RNA templates were generated by run-off transcription. As template for these transcription reactions, a recombmant pcDNA3 plasmid (Invitrogen) containing a cDNA version of the HCV genome was used and referred to as pcDNA/HCVf1. In vitro transcriptions were performed using the MEGAscπptTM kit (A bion) , as suggested by the manufacturer. In brief, the plasmid pcDNA/HCVfl was linearized with EcoRI to generate a truncated HCV transcript of about 6900 nucleotides. Linearized DNA was extracted with a one to one volume of phenol/chloroform, precipitated witn ethanol, then 1 μg of this linearized DNA was used as template in T7 RNA polymerase-driven in vitro transcription reactions. Transcripts were extracted using the TRIZOL© reagent (Life Technologies) and an aliquot (1 μg) was used as template in RdRp assays.

Claims (18)

CLAIMSWe claim:
1. A method for the treatment or prevention of an hepatitis C infection in a host comprising administering a therapeutically effective amount of a compound having the formula lb or a pharmaceutically acceptable salt thereof:
wherem
B is chosen from a purine, a pyrimidme or an analogue thereof;
Ra is chosen from H, monophosphate, diphosphate, triphosphate, carbonyl substituted with a Cι_6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C 6-ιc aryl, and O
II P—ORc
O IRc wherem each Re are independently chosen from
H, Cι-6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C6-ιo aryl and an hydroxy protecting group; and Z is ORb, wherem Rb is chosen from of H, Cι_6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C ι_6 acyl, or an hydroxy protecting group
Di and D2 are independently selected from N3, F, or H , Di and D2 can also be joined to be chosen from C3-cycloalkyl, -=CH2, or -=CF2, ; with the proviso that when B is adenme, Z is ORb, Di is H, D2 is H and Rb is H, Ra s not triphosphate or H.
2. A method according to claim 1 wherem Z is OH.
3. A method according to claim 2 wherem Di is H and D2 is F.
4. A method according to claim 2 wherem Ra is cnosen from H, monophosphate, diphosphate, triphosphate.
5. A method according to claim 2 wherein Ra is triphosphate .
6. A method according to claim 2 wherem Ra is H.
7. A method according to claim 3 wherem Ra is chosen from H, monophosphate, diphosphate, triphosphate.
8. A method according to claim 3 wherein Ra is triphosphate .
9. A method according to claim 3 wherem Ra is H.
10. A method according to claim 2 wherem B is chosen from adenm-9-yl, guanm-9-yl, mosm-9-yl, 2-ammo- purm-9-yl, 2-ammo-6-chloro-purm-9-yl, 2-6-dιammo- puπn-9-yl, thymm-l-yl, cytosm-l-yl, uracιl-1-yl, 3- carboxamιdo-1, 2, 4-trιazol-l-yl, 3-deaza-adenm-9-yl, 3- deaza-guanm-9-yl, 3-deaza-mosm-9-yl, 3-deaza-2- ammo-purm-9-yl, 3-deaza-2-ammo-6-chloro-purm-9~yl 3-deaza-2-6-dιammo-purm-9-yl, 7-deaza-adenm-9-yl, 7- deaza-guanm-9-yl, 7-deaza-mosm-9-yl, 7-deaza-2- ammo-purm-9-yl, 7-deaza-2-ammo-6-chloro-purm-9-yl, 7-deaza-2-6-dιammo-purm-9-yl, 7-deaza-8-aza-adenm-9- yl, 7-deaza-8-aza-guanm-9-yl, 7-deaza-8-aza-mosm-9- yl, 7-deaza-8-aza-2-ammo-purm-9-yl, 7-deaza-8-aza-2- ammo-6-chloro-purm-9-yl, 7-oeaza-8-aza-2-6-dιammo- purm-9-yl, 8-aza-adenm-9-yl, 8-aza-guanm-9-yl , 8- aza-mosm-9-yl, 8-aza-2-ammo-purm-9-yl, 8-aza-2- ammo-6-chloro-purm-9-yl, 8-aza-2-6-dιammo-purm-9- yl, 5-aza-thymm-l-yl, 5-aza-cytosm-l-yl, 5-aza- uracιl-1-yl, 6-aza-thymm-l-yl, 6-aza-cytosm-l-yl, 6- aza-uracιl-1-yl; each of which is unsubstituted or substituted by at least one of NHR3, Cι-6alkyl, -OCχ_ 6alkyl, Br, Cl, F, I or OH, wherem R3 is H, Cι_6alkyl or Cι-6acyl.
11. A method according to claim 3 wherem B is chosen from adenm-9-yl, guanm-9-yl, mosm-9-yl, 2-ammo- purm-9-yl, 2-ammo-6-chloro-purm-9-yl, 2-6-dιammo- purm-9-yl, thymm-l-yl, cytosm-l-yl, uracιl-1-yl, 3- carboxamιdo-1, 2, 4-trιazol-l-yl, 3-deaza-adenm-9-yl, 3- deaza-guanm-9-yl, 3-deaza-mosm-9-yl, 3-deaza-2- ammo-purm-9-yl, 3-deaza-2-ammo-6-chloro-puπn-9-yl 3-deaza-2-6-dιammo-purm-9-yl, 7-deaza-adenm-9-yl, 7- deaza-guanm-9-yl, 7-deaza-mosm-9-yl, 7-deaza-2- ammo-purm-9-yl, 7-deaza-2-ammo-β-chloro-purm-9-yl, 7-deaza-2-6-dιammo-purm-9-yl, 7-deaza-8-aza-adenm-9- yl, 7-deaza-8-aza-guanm-9-yl, 7-deaza-8-aza-mosm-9- yl, 7-deaza-8-aza-2-ammo-purm-9-yl, 7-deaza-8-aza-2- ammo-6-chloro-purm-9-yl, 7-deaza-8-aza-2-6-dιammo- purm-9-yl, 8-aza-adenm-9-yl, 8-aza-guanm-9-yl, 8- aza-mosm-9-yl, 8-aza-2-ammo-purm-9-yl, 8-aza-2- ammo-6-chloro-purm-9-yl, 8-aza-2-6-dιammo-purm-9- yl, 5-aza-thymm-l-yl, 5-aza-cytosm-l-yl, 5-aza- uracιl-1-yl, 6-aza-thymm-l-yl, 6-aza-cytosm-l-yl, 6- aza-uracιl-1-yl; each of which is unsubstituted or substituted by at least one of NHR3, Cι-6alkyl, -OCι_ ealkyl, Br, Cl, F, I or OH, wherem R3 is H, Cι_6alkyl or Cι-6acyl.
12. A method according to claim 2 wherein B is chosen from adenm-9-yl, guanm-9-yl, mosm-9-yl, 2-ammo- purm-9-yl, 2-ammo-6-chloro-purm-9-yl, 2-6-dιamιno- puπn-9-yl, thymm-l-yl, cytosm-l-yl, 5-fluoro- cytosm-1-yl, uracιl-1-yl, 5-fluorouracil or 1,2,4- trιazole-3-carboxamιde base (ribaπvm base).
13. A method according to claim 3 wherein B is chosen from adenm-9-yl, guanm-9-yl, mosm-9-yl, 2-amιno- puπn-9-yl, 2-amιno-6-chloro-purιn-9-yl, 2-6-dιammo- purm-9-yl, thymm-l-yl, cytosm-l-yl, 5-fluoro- cytosιn-1-yl, uracιl-1-yl, 5-fluorouracil or 1,2,4- trιazole-3-carboxamιde base (ribaπvm base) .
14. A method according to claim 1 where the compound of formula I is chosen from:
Compound #1 : 3' -deoxycytidme;
Compound #2 : 3' -deoxycytιdme-5' triphosphate;
Compound #3 : 5-Fluoro-3' -deoxycytidine;
Compound #4 : 5-Fluoro-3' -deoxycytιdme-5' triphosphate ;
Compound *5 : 3' -deoxyuridine;
Compound *6 : 3' -deoxyuπdme-5' triphosphate;
Compound #7 : 5-Fluoro-3' -deoxyuridine;
Compound *8:5-Fluoro-3' -deoxyuridine-5' triphosphate;
Compound #9 : 3' -deoxythymidme;
Compound *10 : 3' -deoxythymιdme-5' triphosphate;
Compound #11 : 3' -deoxyguanosme;
Compound #12 : 3' -deoxyguanosine-5' triphosphate;
Compound #13 : 2-N-acetyl-3' -deoxyguanosine ;
Compound #14 : 2-N-acetyl-3' -deoxyguanosine-5' triphosphate;
Compound #15 : 5-Methyl-3' -deoxycytidme;
Compound #16 : 5-Methyl-3' -deoxycytιdme-5' triphosphate;
Compound #17 : 5-Iodo-3' -deoxycytidme;
Compound #18 : 5-Iodo-3' -deoxycytιdme-5' triphosphate ; Compound #19 : 5-Chloro-3' -deoxycytidme;
Compound #20 : 5-Chloro-3' -oeoxycytιdme-5' triphosphate ; Compound #21: 3' -fluoro-3' -deoxyguanosme;
Compound #22 : 3' -fluoro-3' -deoxyguanosme -5' triphosphate; Compound #23 : 3' -fluoro 3' -deoxycytidme;
Compound #24 : 3' -fluoro 3' -deoxycytιdme-5' triphosphate; Compound #25 : 5-Iodo-3' -deoxycytidme;
Compound #26 : 5-Iodo-3' -deoxycytιdme-5' triphosphate; Compound #27: 5-Chloro -3' -deoxyuridine;
Compound #28: 5-Chloro -3' -deoxyurιdme-5' triphosphate; Compound #29: 5-Bromo -3' -deoxyuridine;
Compound #30: 5-Bromo -3' -deoxyuπdme-5' triphosphate; Compound #31: 6-Chloro-3' -deoxyguanosme;
Compound #32:6-Chloro -3' -deoxyguanosine -5' triphosphate; Compound #33 : 3' -spirocyclopropyl-3' -deoxyguanosine; Compound #34 : 3' -spirocyclopropyl-3' -deoxyguanosine - 5' triphosphate;
Compound #35 : 3' -difluoro-spιrocyclopropyl-3' - deoxyguanosine ;
Compound #36 : 3' -difluoro-spιrocyclopropyl-3' - deoxyguanosine -5' triphosphate; Compound #37 : 3 ' -methylene-3 ' -deoxyguanosme ; Compound #38 : 3' -methylene-3 ' -deoxyguanosine - 5' triphosphate;
Compound #39 : 3' -diflurometnylene 3' -deoxyguanosine ; Compound #40 : 3' -difluromethylene 3' -deoxyguanosme - 5' triphosphate;
Compound #41 : 3' -spirocyclopropyl-3' -deoxycytidme; Compound #42 : 3' -spirocyclopropyl-3' - deoxycytid e - 5' triphosphate;
Compound #43:3'-dιfluoro-spιrocyclopropyl-3'- deoxycytidme;
Compound #44:3'- difluoro-spιrocyclopropyl-3' - deoxycytidme -5' triphosphate ; Compound #45 : 3' -methylene-3 ' - deoxycytidine; Compound #46 : 3' -methylene-3' - deoxycytidine - 5' triphosphate;
Compound #47 : 3' -difluromethylene 3'- deoxycytidine; Compound #48 : 3' -difluromethylene 3'- deoxycytidine - 5' triphosphate;
Compound #49 : 9—β-D-xylofuranosyl-guanosine ; Compound #50 : 9—β-D-xylofuranosyl-guanosine - 5' triphosphate; Compound #51 : 9—β-D-xylofuranosyl-cytidine; Compound #52 : 9—β-D-xylofuranosyl-cytidine - 5' triphosphate;
Compound #53: 3'-azido-3'- deoxycytidine;
Compound #54 : 3' -azido-3' - deoxycytidine 5' triphosphate; or a pharmaceutically acceptable salt thereof.
15. The method according to anyone of claims 1 to 14 wherein said compound is used in combination with at least one further therapeutic agent chosen from interferon (IFN), interferon α-2a, interferon α-2b, consensus interferon (CIFN) , ribavirin, amantadine, rimantadine, interleukine-12 , ursodeoxycholic acid (UDCA) , glycyrrhizin and silybum marianum.
16. Use of a compound of formula (lb) as defined m any one of claims 1 to 14, or a pharmaceutically acceptable salt thereof, m the manufacture of a medicament for the treatment or prevention of a hepatitis C infection.
17. An anti- flavivirus pharmaceutical composition comprising a therapeutically effective amount of a compound of formula (lb) , as defined any one of claims 1 to 14, or a pharmaceutically acceptable salt thereof, m association with a pharmaceutically acceptable carrier.
18. Use of a compound of formula (lb) as defined m any one of claims 1 to 14, or a pharmaceutically acceptable salt thereof, in the manufacture of a medicament for the treatment or prevention of a Flavivirus infection.
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