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Bergman, C.

Publications and source records attributed to Bergman, C..

2 recordsLinked to original sources

Genetically-encoded discovery and development of peptide-macrocycle imaging agents for PD-L1

The unique cell surface composition of tumor cells forms the molecular basis for many targeting and cell-based therapies. Here, we describe the development of novel peptide-based targeting agents for programmed death ligand 1 (PD-L1). Molecular imaging by peptide agents, coupled with therapeutic intervention using the same modality, represents a critical advancement in cancer management. Whole-body PET imaging of PD-L1 expression offers a superior alternative to traditional immuno-histochemistry, making PD-L1 radiodiagnostic imaging a highly sought-after modality. PD-L1 targeting modalities developed for clinical imaging to date can be divided into antibodies, protein domains, and small macrocyclic peptides with fewer than 20 amino acids. The latter modalities can address many challenges seen in antibody-based targeting vectors. All potent PD-L1 targeting peptide modalities reported to date rely extensively on non-canonical amino acids (ncAAs). Here, we report a comprehensive structure-activity relationship (SAR) analysis of a family of macrocycles discovered from an Sx2Cx8Cx2 phage-display library composed entirely of natural amino acids (x represents 19 natural amino acids excluding Cys). Using >10,000 variants in ''focused'' phage-display libraries, we optimized these macrocycles to achieve single-digit-nanomolar potency in protein- and cell-based assays. En route to this optimization, the activity of 216 synthetic macrocycles towards PD-L1 was measured in five distinct assays; two leads have been evaluated by imaging in tumor xenografts in mice, and the X-ray structure of one advanced lead in complex with PD-L1 has been determined at 2.78 [A] resolution. This publication demonstrates the development potential of PD-L1-targeting macrocycles that do not require extensive incorporation of ncAAs and the democratization of discovery by mapping the optimization path to single-digit-nanomolar assets for targeted radiopharmaceuticals via canonical phage-display technology.

pharmacology and toxicology↗

Disrupting miR-466l-3p and HuR Cooperation with Target Site Blockers Reveals a Therapeutic Strategy to Destabilize mRNA Transcripts

MicroRNAs (miRNAs) typically regulate gene expression by promoting mRNA degradation, but select miRNAs, such as miR-466l-3p (miR-466), can instead stabilize transcripts in coordination with RNA-binding proteins (RBPs) like HuR. We identify conserved AU-rich elements (cAREs) within the 3'UTRs of IL-17A, GM-CSF, and IL-23A as critical cis-regulatory binding sites where miR-466 facilitates HuR recruitment to promote mRNA stability. Using site-directed mutagenesis, RNA pulldown, and MS2-TRAP assays to capture miRNA-mRNA complexes, we demonstrate that HuR binding depends on prior engagement by miR-466. Disrupting this interaction with rationally designed Target Site Blockers (TSBs) oligonucleotides destabilizes target mRNAs and suppresses cytokine expression in vitro and in vivo. TSBs directed against IL-17A, GM-CSF, and IL-23A selectively blocked miR-466 binding, reduced transcript stability, and lowered cytokine production without affecting unrelated mRNAs. In murine models of LPS-induced inflammation, psoriasis, and autoimmunity, TSBs exhibited therapeutic efficacy and cytokine specificity, outperforming monoclonal antibodies in some settings. Phosphorothioate-modified TSBs enabled systemic delivery and retained activity in human T cells, underscoring translational potential. Similar to antisense oligonucleotides, TSBs trigger RNase H1-mediated degradation while also blocking miRNA-mRNA interactions. These findings establish miR-466-HuR cooperation as a therapeutically targetable axis through TSBs without affecting global miRNA function. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=143 SRC="FIGDIR/small/709388v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@1a87bceorg.highwire.dtl.DTLVardef@5824b2org.highwire.dtl.DTLVardef@d14f6eorg.highwire.dtl.DTLVardef@1b5c033_HPS_FORMAT_FIGEXP M_FIG C_FIG O_TEXTBOXMechanism of TSB-mediated disruption of cooperative miRNA-HuR-dependent mRNA stabilizationA: In the canonical model, destabilizing miRNAs (e.g., miR-16) bind to their target sites within the 3'UTR, recruiting the RNA-induced silencing complex (miRISC) to promote mRNA decay or translational repression. B: In contrast, a newly identified class of miRNAs--stabilizing miRNAs (E-miRNAs), such as miR-466l-3p--bind to specific target sequences within AU-rich elements (AREs) in the 3'UTR. This binding facilitates cooperative recruitment of the RNA-binding protein HuR (ELAVL1), resulting in enhanced mRNA stability and/or translation. C: Target site blockers (TSBs) designed to occlude miRNA-binding sites competitively inhibit miRISC loading, thereby disrupting HuR engagement and reversing stabilization. This selective disruption leads to transcript-specific mRNA destabilization without affecting global miRNA function. C_TEXTBOX

molecular biology↗