REWIRING ABERRANT CANCER SIGNALING TO A THERAPEUTIC EFFECTOR RESPONSE WITH A SYNTHETIC TWO-COMPONENT SYSTEM
Compositions and methods for targeted treatment of cancer are disclosed. In particular, the invention relates to methods of targeting anti-cancer therapy to cells exhibiting aberrant signaling associated with cancer pathogenesis by administering synthetic signaling proteins that couple detection of an oncogenic signal to release of therapeutic agents into cancerous cells.
1 . A method for targeted treatment of a cancer associated with hyperactivity of a receptor tyrosine kinase, the method comprising:
a) administering to a subject in need thereof a therapeutically effective amount of a first fusion protein comprising a protease connected to a phosphotyrosine binding (PTB) domain capable of binding to a phosphorylated tyrosine residue on the receptor tyrosine kinase; and
b) administering a therapeutically effective amount of a second fusion protein comprising an SH2 domain connected to i) a substrate comprising a cleavage site recognized by the protease and ii) an anti-cancer therapeutic agent, wherein cleavage of the substrate at the cleavage site by the protease of the first fusion protein releases the anti-cancer therapeutic agent from the second fusion protein.
2 . The method of claim 1 , wherein the receptor tyrosine kinase is a hyperactive ErbB receptor tyrosine kinase.
3 . The method of claim 1 , wherein the protease is a hepatitis C virus (HCV) NS3 protease.
4 . The method of claim 1 , wherein the first fusion protein further comprises a degron, wherein degradation activity of the degron is inhibited by binding of the PTB domain of the fusion protein to the phosphorylated tyrosine residue on the receptor tyrosine kinase such that the fusion protein accumulates preferentially in cancerous cells.
5 . The method of claim 4 , wherein the degron is located in a loop of the PTB domain.
6 . The method of claim 4 , wherein the degron is a HIF1a degron.
7 . The method of claim 1 , wherein the PTB is a Shc PTB.
8 . The method of claim 1 , wherein the SH2 domain is a Vav1 SH2 domain.
9 . The method of claim 1 , wherein the tyrosine kinase receptor is constitutively phosphorylated at the tyrosine residue.
10 . The method of claim 1 , wherein the cancer is selected from the group consisting of breast cancer, colorectal cancer, head and neck cancer, brain cancer, and lung cancer.
11 . The method of claim 1 , wherein the first fusion protein or the second fusion protein is provided by a vector.
12 . The method of claim 12 , wherein the vector is a non-viral or viral vector.
13 . The method of claim 13 , wherein the viral vector is a non-integrating viral vector.
14 . The method of claim 1 , wherein the anti-cancer therapeutic agent is a pro-apoptotic protein or a transcription factor that activates a pro-apoptotic gene.
15 . The method of claim 14 , wherein the pro-apoptotic protein is BAX.
16 . The method of claim 14 , wherein the transcription factor is FoxO3.
17 . The method of claim 1 , wherein the anti-cancer therapeutic agent comprises a complex of a catalytically inactive Cas9 (dCas9) with a guide RNA for activating or repressing expression of a gene of interest.
18 . The method of claim 17 , wherein the dCas9) is fused to a transcriptional activation domain capable of activating transcription of a gene of interest.
19 . The method of claim 18 , wherein the gene of interest is a pro-apoptotic gene or an immunostimulatory gene.
20 . The method of claim 18 , wherein the transcriptional activation domain is a VP64-p65-Rta (VPR) transcriptional activation domain.
21 . The method of claim 1 , wherein multiple cycles of treatment are administered to the subject for a time period sufficient to effect at least a partial tumor response.
22 . The method of claim 21 , wherein multiple cycles of treatment are administered to the subject for a time period sufficient to effect a complete tumor response.
23 . A method of selectively treating a cancerous cell having a hyperactive ErbB receptor tyrosine kinase in a heterogenous population of cells, the method comprising:
a) contacting the population of cells with an effective amount of a first fusion protein comprising a protease connected to a phosphotyrosine binding (PTB) domain that selectively binds to a phosphorylated tyrosine residue on the hyperactive receptor tyrosine kinase; and
b) contacting the population of cells with an effective amount of a second fusion protein comprising an SH2 domain connected to i) a substrate comprising a cleavage site recognized by the protease and ii) an anti-cancer therapeutic agent, wherein cleavage of the substrate at the cleavage site by the protease of the first fusion protein releases the therapeutic agent from the second fusion protein inside the cancerous cell having the hyperactive ErbB receptor tyrosine kinase.
24 . The method of claim 23 , wherein the protease is a hepatitis C virus (HCV) NS3 protease.
25 . The method of claim 23 , wherein the first fusion protein further comprises a degron, wherein degradation activity of the degron is inhibited by binding of the PTB domain of the fusion protein to the phosphorylated tyrosine residue on the receptor tyrosine kinase such that the fusion protein accumulates preferentially in cancerous cells.
26 . The method of claim 25 , wherein the degron is located in a loop of the PTB domain.
27 . The method of claim 25 , wherein the degron is an HIF1a degron.
28 . The method of claim 23 , wherein the PTB is a Shc PTB.
29 . The method of claim 23 , wherein the SH2 domain is a Vav1 SH2 domain.
30 . The method of claim 23 , wherein the tyrosine kinase receptor is constitutively phosphorylated at the tyrosine residue.
31 . The method of claim 23 , wherein the first fusion protein or the second fusion protein is provided by a vector.
32 . The method of claim 31 , wherein the vector is a non-viral or viral vector.
33 . The method of claim 32 , wherein the viral vector is a non-integrating viral vector.
34 . The method of claim 23 , wherein the anti-cancer therapeutic agent is a pro-apoptotic protein or a transcription factor that activates a pro-apoptotic gene.
35 . The method of claim 34 , wherein the pro-apoptotic protein is BAX.
36 . The method of claim 34 , wherein the transcription factor is FoxO3.
37 . The method of claim 23 , wherein the anti-cancer therapeutic agent comprises a complex of a catalytically inactive Cas9 (dCas9) with a guide RNA for activating or repressing expression of a gene of interest.
38 . The method of claim 37 , wherein the dCas9) is fused to a transcriptional activation domain capable of activating transcription of a gene of interest.
39 . The method of claim 38 , wherein the gene of interest is a pro-apoptotic gene or an immunostimulatory gene.
40 . The method of claim 38 , wherein the transcriptional activation domain is a VP64-p65-Rta (VPR) transcriptional activation domain.