IP Library Granted Patent US 12,454,576
Granted Patent B2
US 12,454,576 · App. 18/175,786 · Granted Oct 28, 2025

Nanobody based imaging and targeting of ECM in disease and development

Inventors: Richard O. Hynes (Winchester, MA); Noor Jailkhani (Cambridge, MA); Hidde L. Ploegh (Boston, MA); Yushu J. Xie (Brookline, MA)
Assignees: Massachusetts Institute of Technology; Children's Medical Center Corporation; Whitehead Institute for Biomedical Research
C07K16/2842A61K40/11A61K40/31A61K40/42A61K47/6809A61K47/6813A61K47/6849A61K47/6851A61K49/0058A61K49/085A61K51/1027A61K51/1045A61K51/1051A61K51/1057A61K51/1093A61P35/04C07K14/78C07K16/18C12N5/0636A61K2039/505A61K2239/13A61K2239/31A61K2239/38A61K2239/57B82Y5/00C07K2317/22C07K2317/569C07K2319/03C07K2319/33
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Quick Facts
Patent No.
US 12,454,576
App. No.
18/175,786
Granted
Oct 28, 2025
Kind
B2
Abstract

Methods for developing disease-related nanobodies and related products and kits are provided. The disease-specific proteins are extracellular matrix (ECM) proteins, domains or epitopes that are associated with various aspects of disease and are not present, or are present in very low quantities, in non-diseased individuals. Highly effective nanobodies capable of specifically binding to these ECM protein epitopes useful in in vivo imaging assays, the detection, diagnosis and treatment of diseases as well as monitoring therapeutic progress in a patient with a disease are provided herein.

Claims (9)

1. A chimeric antigen receptor (CAR) construct comprising an ectodomain comprising a nanobody which is specific for and binds directly to a diseased state extracellular matrix (ECM) epitope, wherein the diseased state ECM epitope is present in greater amounts in a diseased tissue than in a normal tissue, a transmembrane domain, and an endodomain, wherein the nanobody comprises a complementarity determining region (CDR) 1, CDR2 and CDR3 comprising a) SEQ ID NO: 19, SEQ ID NO: 36, and SEQ ID NO: 53, respectively; b) SEQ ID NO: 25, SEQ ID NO: 42, and SEQ ID NO: 59, respectively; c) SEQ ID NO: 26, SEQ ID NO: 43, and SEQ ID NO: 60, respectively; or d) SEQ ID NO: 28, SEQ ID NO: 45, and SEQ ID NO: 62, respectively.

2. The CAR construct of claim 1 , wherein the nanobody specifically binds the diseased state ECM epitope with a binding affinity in the nM to sub-pM range, as measured by Biolayer Interferometry (BLI).

3. The CAR construct of claim 1 , wherein the diseased state ECM epitope is EIIIB domain of fibronectin.

4. The CAR construct of claim 1 , wherein the diseased state ECM epitope is Tenascin C.

5. The CAR construct of claim 1 , wherein the nanobody comprises a sequence set forth in SEQ ID NOs: 1-4.

6. A chimeric antigen receptor (CAR) construct comprising an ectodomain comprising a sequence set forth in SEQ ID NOs: 1-4 or an antigen binding fragment thereof which is specific for and binds directly to a diseased state extracellular matrix (ECM) epitope, wherein the diseased state ECM epitope is present in greater amounts in a diseased tissue than in a normal tissue, a transmembrane domain, and an endodomain.

7. The CAR construct of claim 6 , wherein the ectodomain specifically binds the diseased state ECM epitope with a binding affinity in the nM to sub-pM range, as measured by Biolayer Interferometry (BLI).

8. The CAR construct of claim 6 , wherein the diseased state ECM epitope is (i) EIIIB domain of fibronectin, or (ii) human Tenascin C.

9. A chimeric antigen receptor T-cell (CART cell), comprising a T cell having the CAR construct of claim 1 .

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2024
From: HYNES, RICHARD O.; HOWARD HUGHES MEDICAL INSTITUTE; JAILKHANI, NOOR
To: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 067236/0549 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2024
From: PLOEGH, HIDDE L.
To: CHILDREN'S MEDICAL CENTER CORPORATION; WHITEHEAD INSTITUTE FOR BIOMEDICAL RESEARCH
Reel/Frame 067236/0592 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2024
From: XIE, YUSHU JOY
To: CHILDREN'S MEDICAL CENTER CORPORATION; MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 067236/0597 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2024
From: HYNES, RICHARD O.
To: HOWARD HUGHES MEDICAL INSTITUTE
Reel/Frame 067236/0602 →
CONFIRMATORY LICENSE Recorded Apr 19, 2023
From: MASSASSCHUSETTS INSTITUTE OF TECHNOLOGY
To: UNITED STATES GOVERNMENT
Reel/Frame 063379/0228 →
Continuity (3)
Division 16258457 · Jan 25, 2019
Provisional Application 62621811 · Jan 25, 2018
Related Publication 20230348605A1 · Nov 2, 2023
References Cited (31)
US 11597769B2 · Hynes · 2023 [cited by applicant]
US 20110294982A1 · Vanlandschoot et al. · 2011 [cited by applicant]
US 20130136744A1 · Bouche et al. · 2013 [cited by applicant]
US 20190328784A1 · Ostertag · 2019 [cited by examiner]
WO WO0076456A2 · 2000 [cited by applicant]
WO WO2014145252A2 · 2014 [cited by applicant]
WO WO2017194782A2 · 2017 [cited by applicant]
Kaspar et al., International Journal of Cancer 118(6): 1331-1339 (Year: 2006). [cited by examiner]
Peterson et al., Thesis p. 1-51 (Year: 2017). [cited by examiner]
Lloyd et al., Protein Engineering, Design & Selection 22:159-168 (Year: 2009). [cited by examiner]
Edwards et al., J Mol Biol. 334(1): 103-118 (Year: 2003). [cited by examiner]
Rudikoff et al., PNAS 79: 1979-1983 (Year: 1982). [cited by examiner]
Nguyen et al., EMBO Journal, 19(5): 921-930 (Year: 2000). [cited by examiner]
Extended European Search Report for EP 19743635.5 mailed Oct. 6, 2021. [cited by applicant]
International Preliminary Report on Patentability for PCT/US2019/015290 mailed Aug. 6, 2020. [cited by applicant]
International Search Report and Written Opinion for PCT/US2019/015290 mailed Apr. 5, 2019. [cited by applicant]
[No Author Listed], MIT Catalog Library Record showing May 9, 2017 catalog date for Peterson et al., Generating Single-Domain Antibodies Against Fibronectin Splice Variants, Thesis (Year: 2017). [cited by applicant]
Cortez-Retamozo et al., Efficient cancer therapy with a nanobody-based conjugate. Cancer Res. Apr. 15, 2004;64(8):2853-7. doi: 10.1158/0008-5472.can-03-3935. PMID: 15087403. [cited by applicant]
Edwards et al., The remarkable flexibility of the human antibody repertoire; isolation of over one thousand different antibodies to a single protein, BLyS. J Mol Biol. Nov. 14, 2003;334(1):103-18. [cited by applicant]
Giblin et al., Tenascin-C: Form versus function. Cell Adh Migr. 2015;9(1-2):48-82. doi: 10.4161/19336918.2014.987587. PMID: 25482829; PMCID: PMC4422809. [cited by applicant]
Hassanzadeh-Ghassabeh et al., Nanobodies and their potential applications. Nanomedicine (Lond). Jun. 2013;8(6):1013-26. doi: 10.2217/nnm.13.86. PMID: 23730699. [cited by applicant]
Hynes, Molecular biology of fibronectin. Annu Rev Cell Biol. 1985;1:67-90. doi: 10.1146/annurev.cb.01.110185.000435. PMID: 3916323. [cited by applicant]
Kaspar et al., Fibronectin as target for tumor therapy. Int J Cancer. Mar. 15, 2006;118(6):1331-9. doi: 10.1002/ijc.21677. PMID: 16381025. [cited by applicant]
Lloyd et al., Modelling the human immune response: performance of a 1011 human antibody repertoire against a broad panel of therapeutically relevant antigens. Protein Eng Des Sel. Mar. 2009;22(3):159-68. doi: 10.1093/pr… [cited by applicant]
Naba et al., The matrisome: in silico definition and in vivo characterization by proteomics of normal and tumor extracellular matrices. Mol Cell Proteomics. Apr. 2012;11(4):M111.014647. doi: 10.1074/mcp.M111.014647. Epu… [cited by applicant]
Narunsky et al., Imaging aspects of the tumor stroma with therapeutic implications. Pharmacol Ther. Feb. 2014;141(2):192-208. doi: 10.1016/j.pharmthera.2013.10.003. Epub Oct. 14, 2013. PMID: 24134903; PMCID: PMC3947248. [cited by applicant]
Nguyen et al., Camel heavy-chain antibodies: diverse germline V(H)H and specific mechanisms enlarge the antigen-binding repertoire. EMBO J. Mar. 1, 2000;19(5):921-30. [cited by applicant]
Pardon et al., A general protocol for the generation of Nanobodies for structural biology. Nat Protoc. Mar. 2014;9(3):674-93. doi: 10.1038/nprot.2014.039. Epub Feb. 27, 2014. PMID: 24577359; PMCID: PMC4297639. [cited by applicant]
Peterson et al. Generating single-domain antibodies against fibronectin splice variants. Thesis. 2017. [cited by applicant]
Sadelain et al., The basic principles of chimeric antigen receptor design. Cancer Discov. Apr. 2013;3(4):388-98. doi: 10.1158/2159-8290.CD-12-0548. Epub Apr. 2, 2013. PMID: 23550147; PMCID: PMC3667586. [cited by applicant]
White et al., Fibronectin splice variants: understanding their multiple roles in health and disease using engineered mouse models. IUBMB Life. Jul. 2011;63(7):538-46. doi: 10.1002/iub.493. PMID: 21698758. [cited by applicant]