| Literature DB >> 35806163 |
Sashi Debnath1, Guiyang Hao1, Bing Guan1, Pawan Thapa1, Justin Hao1,2, Hans Hammers3,4, Xiankai Sun1,4,5.
Abstract
We previously reported the design and synthesis of a small-molecule drug conjugate (SMDC) platform that demonstrated several advantages over antibody-drug conjugates (ADCs) in terms of in vivo pharmacokinetics, solid tumor penetration, definitive chemical structure, and adaptability for modular synthesis. Constructed on a tri-modal SMDC platform derived from 1,3,5-triazine (TZ) that consists of a targeting moiety (Lys-Urea-Glu) for prostate-specific membrane antigen (PSMA), here we report a novel class of chemically identical theranostic small-molecule prodrug conjugates (T-SMPDCs), [18/19F]F-TZ(PSMA)-LEGU-TLR7, for PSMA-targeted delivery and controlled release of toll-like receptor 7 (TLR7) agonists to elicit de novo immune response for cancer immunotherapy. In vitro competitive binding assay of [19F]F-TZ(PSMA)-LEGU-TLR7 showed that the chemical modification of Lys-Urea-Glu did not compromise its binding affinity to PSMA. Receptor-mediated cell internalization upon the PSMA binding of [18F]F-TZ(PSMA)-LEGU-TLR7 showed a time-dependent increase, indicative of targeted intracellular delivery of the theranostic prodrug conjugate. The designed controlled release of gardiquimod, a TLR7 agonist, was realized by a legumain cleavable linker. We further performed an in vivo PET/CT imaging study that showed significantly higher uptake of [18F]F-TZ(PSMA)-LEGU-TLR7 in PSMA+ PC3-PIP tumors (1.9 ± 0.4% ID/g) than in PSMA- PC3-Flu tumors (0.8 ± 0.3% ID/g) at 1 h post-injection. In addition, the conjugate showed a one-compartment kinetic profile and in vivo stability. Taken together, our proof-of-concept biological evaluation demonstrated the potential of our T-SMPDCs for cancer immunomodulatory therapies.Entities:
Keywords: agonist; controlled release; immunomodulatory; legumain cleavable linker; positron emission tomography; prodrug; prostate cancer; theranostic; toll-like receptors
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Year: 2022 PMID: 35806163 PMCID: PMC9266369 DOI: 10.3390/ijms23137160
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 6.208
Scheme 1Structures of imidazoquinoline-derived TLR7 agonists and the chemically identical T-SMPDCs presented in this work, [18/19F]F-TZ(PSMA)-LEGU-TLR7.
Scheme 2Synthetic routes to the key intermediate AMP-TZ(Lys-Urea-Glu)-PEG6-LEGU-GARD and chemically identical theranostic pair of [18/19F]F-TZ(PSMA)-LEGU-TLR7. DIPEA: N,N-diisopropylethylamine; THF: tetrahydrofuran; TZ: 2,4,6-trichloro-1,3,5-triazine; PEG: polyethylene glycol; PROP: propargyl; Lys: lysine; Glu: glutamic acid; DCM: dichloromethane; DMF: N,N-dimethylformamide, AMP: 4-aminomethyl piperidine; TFA: trifluoroacetic acid; rt: room temperature, PAB: para aminobenzoic acid; PNP: para nitrophenol; Ala: alanine; Asn: asparagine; Trt: triphenyl methyl; LEGU: legumain; GARD: gardiquimod; DMSO: dimethyl sulfoxide.
Figure 1Competitive PSMA binding affinity measurement of [19F]F-TZ(PSMA)-LEGU-TLR7 using PSMA+ PC3-PIP cells and competitive radioligand 125I-labeled Lys-Urea-Glu. The IC50 values was measured to be 134 ± 37 nM by nonlinear regression of the data fitting using GraphPad Prism 7.04 (coefficient of determination R2 = 0.97). Data presented as counts ± s.d. (n = 3).
Figure 2In vitro cell assays of [18F]F-TZ(PSMA)-LEGU-TLR7. (a) Total cell uptake vs. nonspecific uptake of [18F]F-TZ(PSMA)-LEGU-TLR7 in the absence and presence of Lys-Urea-Glu (1 mM). (b) Normalized PSMA specific uptake (no blocking) of [18F]F-TZ(PSMA)-LEGU-TLR7 (the uptake change in PC-3-Flu cells was set at 1.0). (c) Internalization of [18F]F-TZ(PSMA)-LEGU-TLR7 in PSMA+ PC3-PIP cells. Data presented as average counts ± s.d. (n = 3). * p = 0.0004, ** p = 0.0004 (unpaired t-tests performed by GraphPad Prizm 7.04).
Figure 3(a) Time-dependent clearance of [18F]F-TZ(PSMA)-LEGU-TLR7 from the body measured by cumulative radioactivity found in the urine and feces in terms of percentage of the injected dose (%ID) (n = 5). (b) Metabolites and intact [18F]F-TZ(PSMA)-LEGU-TLR7 found in the urine. Data presented as area under the curve in radio TLC. (c) Time-activity-curve (TAC) in the blood after intravenous injection of [18F]F-TZ(PSMA)-LEGU-TLR7 into mice (n = 3 in each time point); data presented as average %ID/g ± s.d. (n = 3).
Figure 4(a) Representative PET/CT images of SCID mice bearing PSMA+ PC3-PIP and PSMA− PC3-Flu xenografts at 1 h p.i. of [18F]F-TZ(PSMA)-LEGU-TLR7. Yellow arrows indicate the tumor location. (b) Quantitative analysis of tissues of interest. Data presented as average %ID/g ± s.d. (n = 3). * p = 0.02 (unpaired t-tests performed by GraphPad Prizm 7.04).