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Published in: Journal of Hematology & Oncology 1/2021

Open Access 01-12-2021 | Multiple Myeloma | Research

A non-internalised CD38-binding radiolabelled single-domain antibody fragment to monitor and treat multiple myeloma

Authors: Elodie Duray, Margaux Lejeune, Frederic Baron, Yves Beguin, Nick Devoogdt, Ahmet Krasniqi, Yoline Lauwers, Yong Juan Zhao, Matthias D’Huyvetter, Mireille Dumoulin, Jo Caers

Published in: Journal of Hematology & Oncology | Issue 1/2021

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Abstract

Background

Antibody-based therapies targeting CD38 are currently used as single agents as well as in combination regimens for multiple myeloma, a malignant plasma cell disorder. In this study, we aimed to develop anti-CD38 single-domain antibodies (sdAbs) that can be used to trace CD38+ tumour cells and subsequently used for targeted radionuclide therapy. SdAbs are derived from Camelidae heavy-chain antibodies and have emerged as promising theranostic agents due to their favourable pharmacological properties.

Methods

Four different anti-CD38 sdAbs were produced, and their binding affinities and potential competition with the monoclonal antibody daratumumab were tested using biolayer interferometry. Their binding kinetics and potential cell internalisation were further studied after radiolabelling with the diagnostic radioisotope Indium-111. The resulting radiotracers were evaluated in vivo for their tumour-targeting potential and biodistribution through single-photon emission computed tomography (SPECT/CT) imaging and serial dissections. Finally, therapeutic efficacy of a lead anti-CD38 sdAb, radiolabelled with the therapeutic radioisotope Lutetium-177, was evaluated in a CD38+ MM xenograft model.

Results 

We retained anti-CD38 sdAb #2F8 as lead based on its excellent affinity and superior stability, the absence of competition with daratumumab and the lack of receptor-mediated internalisation. When intravenously administered to tumour-xenografted mice, radiolabelled sdAb #2F8 revealed specific and sustained tumour retention with low accumulation in other tissues, except kidneys, resulting in high tumour-to-normal tissue ratios. In a therapeutic setting, myeloma-bearing mice received three consecutive intravenous administrations of a high (18.5 MBq) or a low radioactive dose (9.3 MBq) of 177Lu-DTPA-2F8 or an equal volume of vehicle solution. A dose-dependent tumour regression was observed, which translated into a prolonged median survival from 43 days for vehicle-treated mice, to 62 days (p = 0.027) in mice receiving the low and 65 days in mice receiving the high (p = 0.0007) radioactive dose regimen, respectively.

Conclusions

These results highlight the theranostic potential of radiolabelled anti-CD38 sdAbs for the monitoring and treatment of multiple myeloma.
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Literature
1.
go back to reference Kelkar SS, Reineke TM. Theranostics: combining imaging and therapy. Bioconjug Chem. 2011;22(10):1879–903.CrossRef Kelkar SS, Reineke TM. Theranostics: combining imaging and therapy. Bioconjug Chem. 2011;22(10):1879–903.CrossRef
3.
go back to reference van de Donk NWCJ, Richardson PG, Malavasi F. CD38 antibodies in multiple myeloma: back to the future. Blood. 2018;131(1):13–29.CrossRef van de Donk NWCJ, Richardson PG, Malavasi F. CD38 antibodies in multiple myeloma: back to the future. Blood. 2018;131(1):13–29.CrossRef
4.
go back to reference Ghai A, Maji D, Cho N, Chanswangphuwana C, Rettig M, Shen D, et al. Preclinical development of CD38-Targeted [(89)Zr]Zr-DFO-Daratumumab for Imaging Multiple Myeloma. J Nucl Med. 2018;59(2):216–22.CrossRef Ghai A, Maji D, Cho N, Chanswangphuwana C, Rettig M, Shen D, et al. Preclinical development of CD38-Targeted [(89)Zr]Zr-DFO-Daratumumab for Imaging Multiple Myeloma. J Nucl Med. 2018;59(2):216–22.CrossRef
5.
go back to reference Li T, Qi S, Unger M, Hou YN, Deng QW, Liu J, et al. Immuno-targeting the multifunctional CD38 using nanobody. Sci Rep. 2016;6:27055.CrossRef Li T, Qi S, Unger M, Hou YN, Deng QW, Liu J, et al. Immuno-targeting the multifunctional CD38 using nanobody. Sci Rep. 2016;6:27055.CrossRef
6.
go back to reference Fumey W, Koenigsdorf J, Kunick V, Menzel S, Schutze K, Unger M, et al. Nanobodies effectively modulate the enzymatic activity of CD38 and allow specific imaging of CD38(+) tumors in mouse models in vivo. Sci Rep. 2017;7(1):14289.CrossRef Fumey W, Koenigsdorf J, Kunick V, Menzel S, Schutze K, Unger M, et al. Nanobodies effectively modulate the enzymatic activity of CD38 and allow specific imaging of CD38(+) tumors in mouse models in vivo. Sci Rep. 2017;7(1):14289.CrossRef
7.
go back to reference Green DJ, O’Steen S, Lin Y, Comstock ML, Kenoyer AL, Hamlin DK, et al. CD38-bispecific antibody pretargeted radioimmunotherapy for multiple myeloma and other B-cell malignancies. Blood. 2018 ;131(6):611–20.CrossRef Green DJ, O’Steen S, Lin Y, Comstock ML, Kenoyer AL, Hamlin DK, et al. CD38-bispecific antibody pretargeted radioimmunotherapy for multiple myeloma and other B-cell malignancies. Blood. 2018 ;131(6):611–20.CrossRef
8.
go back to reference D’Huyvetter M, Xavier C, Caveliers V, Lahoutte T, Muyldermans S, Devoogdt N. Radiolabeled nanobodies as theranostic tools in targeted radionuclide therapy of cancer. Expert Opin Drug Deliv. 2014;11(12):1939–54.CrossRef D’Huyvetter M, Xavier C, Caveliers V, Lahoutte T, Muyldermans S, Devoogdt N. Radiolabeled nanobodies as theranostic tools in targeted radionuclide therapy of cancer. Expert Opin Drug Deliv. 2014;11(12):1939–54.CrossRef
9.
go back to reference Pain C, Dumont J, Dumoulin M. Camelid single-domain antibody fragments: Uses and prospects to investigate protein misfolding and aggregation, and to treat diseases associated with these phenomena. Biochimie. 2015;111:82–106.CrossRef Pain C, Dumont J, Dumoulin M. Camelid single-domain antibody fragments: Uses and prospects to investigate protein misfolding and aggregation, and to treat diseases associated with these phenomena. Biochimie. 2015;111:82–106.CrossRef
10.
go back to reference Dumoulin M, Conrath K, Van Meirhaeghe A, Meersman F, Heremans K, Frenken LGJ, et al. Single-domain antibody fragments with high conformational stability. Protein Sci. 2002;11(3):500–15.CrossRef Dumoulin M, Conrath K, Van Meirhaeghe A, Meersman F, Heremans K, Frenken LGJ, et al. Single-domain antibody fragments with high conformational stability. Protein Sci. 2002;11(3):500–15.CrossRef
11.
go back to reference Muyldermans S. A guide to: generation and design of nanobodies. FEBS J. 2021;288(7):2084–102.CrossRef Muyldermans S. A guide to: generation and design of nanobodies. FEBS J. 2021;288(7):2084–102.CrossRef
12.
go back to reference Ackaert C, Smiejkowska N, Xavier C, Sterckx YGJ, Denies S, Stijlemans B, et al. Immunogenicity Risk Profile of Nanobodies. Front Immunol. 2021;12(March). Ackaert C, Smiejkowska N, Xavier C, Sterckx YGJ, Denies S, Stijlemans B, et al. Immunogenicity Risk Profile of Nanobodies. Front Immunol. 2021;12(March).
13.
go back to reference Conrath KE, Lauwereys M, Galleni M, Matagne A, Frère JM, Kinne J, et al. β-Lactamase inhibitors derived from single-domain antibody fragments elicited in the Camelidae. Antimicrob Agents Chemother. 2001;45(10):2807–12.CrossRef Conrath KE, Lauwereys M, Galleni M, Matagne A, Frère JM, Kinne J, et al. β-Lactamase inhibitors derived from single-domain antibody fragments elicited in the Camelidae. Antimicrob Agents Chemother. 2001;45(10):2807–12.CrossRef
14.
go back to reference An N, Hou YN, Zhang QX, Li T, Zhang QL, Fang C, et al. Anti-multiple myeloma activity of nanobody-based anti-CD38 chimeric antigen receptor T cells. Mol Pharm. 2018;15(10):4577–88.CrossRef An N, Hou YN, Zhang QX, Li T, Zhang QL, Fang C, et al. Anti-multiple myeloma activity of nanobody-based anti-CD38 chimeric antigen receptor T cells. Mol Pharm. 2018;15(10):4577–88.CrossRef
15.
go back to reference Skerra A, Pluckthun A. Assembly of a functional immunoglobulin Fv fragment in Escherichia coli. Science (80- ). 1988;240(4855):1038 LP – 1041. Skerra A, Pluckthun A. Assembly of a functional immunoglobulin Fv fragment in Escherichia coli. Science (80- ). 1988;240(4855):1038 LP – 1041.
16.
go back to reference El Hajjaji H, Dumoulin M, Matagne A, Colau D, Roos G, Messens J, et al. The zinc center influences the redox and thermodynamic properties of Escherichia coli thioredoxin 2. J Mol Biol. 2009;386(1):60–71.CrossRef El Hajjaji H, Dumoulin M, Matagne A, Colau D, Roos G, Messens J, et al. The zinc center influences the redox and thermodynamic properties of Escherichia coli thioredoxin 2. J Mol Biol. 2009;386(1):60–71.CrossRef
17.
go back to reference Dheur M-S, Poirel HA, Ameye G, Tilman G, Saussoy P, Defour J-P, et al. Characterization of two new high-grade B-cell lymphoma cell lines with MYC and BCL2 rearrangements that are suitable for in vitro drug sensitivity studies. Leuk Lymphoma. 2019;60(4):1043–52.CrossRef Dheur M-S, Poirel HA, Ameye G, Tilman G, Saussoy P, Defour J-P, et al. Characterization of two new high-grade B-cell lymphoma cell lines with MYC and BCL2 rearrangements that are suitable for in vitro drug sensitivity studies. Leuk Lymphoma. 2019;60(4):1043–52.CrossRef
18.
go back to reference Lejeune M, Duray E, Peipp M, Clemenceau B, Baron F, Beguin Y, et al. Balancing the CD38 expression on effector and target cells in daratumumab-mediated NK Cell ADCC in the multiple myeloma context. Cancers (Basel). 2021;13. Lejeune M, Duray E, Peipp M, Clemenceau B, Baron F, Beguin Y, et al. Balancing the CD38 expression on effector and target cells in daratumumab-mediated NK Cell ADCC in the multiple myeloma context. Cancers (Basel). 2021;13.
19.
go back to reference Xavier C, Devoogdt N, Hernot S, Vaneycken I, D’Huyvetter M, De Vos J, et al. Site-specific labeling of his-tagged Nanobodies with (9)(9)mTc: a practical guide. Methods Mol Biol. 2012;911:485–90.CrossRef Xavier C, Devoogdt N, Hernot S, Vaneycken I, D’Huyvetter M, De Vos J, et al. Site-specific labeling of his-tagged Nanobodies with (9)(9)mTc: a practical guide. Methods Mol Biol. 2012;911:485–90.CrossRef
20.
go back to reference Vaneycken I, Devoogdt N, Van Gassen N, Vincke C, Xavier C, Wernery U, et al. Preclinical screening of anti-HER2 nanobodies for molecular imaging of breast cancer. FASEB J. 2011;25(7):2433–46.CrossRef Vaneycken I, Devoogdt N, Van Gassen N, Vincke C, Xavier C, Wernery U, et al. Preclinical screening of anti-HER2 nanobodies for molecular imaging of breast cancer. FASEB J. 2011;25(7):2433–46.CrossRef
21.
go back to reference Loening AM, Gambhir SS. AMIDE: a free software tool for multimodality medical image analysis. Mol Imaging. 2003;2(3):131–7.CrossRef Loening AM, Gambhir SS. AMIDE: a free software tool for multimodality medical image analysis. Mol Imaging. 2003;2(3):131–7.CrossRef
22.
go back to reference D’Huyvetter M, Vincke C, Xavier C, Aerts A, Impens N, Baatout S, et al. Targeted radionuclide therapy with A 177Lu-labeled anti-HER2 nanobody. Theranostics. 2014;4(7):708–20.CrossRef D’Huyvetter M, Vincke C, Xavier C, Aerts A, Impens N, Baatout S, et al. Targeted radionuclide therapy with A 177Lu-labeled anti-HER2 nanobody. Theranostics. 2014;4(7):708–20.CrossRef
23.
go back to reference Krasniqi A, D’Huyvetter M, Xavier C, Van der Jeught K, Muyldermans S, Van Der Heyden J, et al. Theranostic radiolabeled Anti-CD20 sdAb for targeted radionuclide therapy of non-hodgkin lymphoma. Mol Cancer Ther. 2017;16(12):2828–39.CrossRef Krasniqi A, D’Huyvetter M, Xavier C, Van der Jeught K, Muyldermans S, Van Der Heyden J, et al. Theranostic radiolabeled Anti-CD20 sdAb for targeted radionuclide therapy of non-hodgkin lymphoma. Mol Cancer Ther. 2017;16(12):2828–39.CrossRef
24.
go back to reference Rolleman EJ, Valkema R, de Jong M, Kooij PPM, Krenning EP. Safe and effective inhibition of renal uptake of radiolabelled octreotide by a combination of lysine and arginine. Eur J Nucl Med Mol Imaging. 2003;30(1):9–15.CrossRef Rolleman EJ, Valkema R, de Jong M, Kooij PPM, Krenning EP. Safe and effective inhibition of renal uptake of radiolabelled octreotide by a combination of lysine and arginine. Eur J Nucl Med Mol Imaging. 2003;30(1):9–15.CrossRef
25.
go back to reference Wang C, Chen Y, Hou YN, Liu Q, Zhang D, Zhao H, et al. ImmunoPET imaging of multiple myeloma with [(68)Ga]Ga-NOTA-Nb1053. Eur J Nucl Med Mol Imaging. 2021 Feb; Wang C, Chen Y, Hou YN, Liu Q, Zhang D, Zhao H, et al. ImmunoPET imaging of multiple myeloma with [(68)Ga]Ga-NOTA-Nb1053. Eur J Nucl Med Mol Imaging. 2021 Feb;
26.
go back to reference Fumey W, Koenigsdorf J, Kunick V, Menzel S, Schütze K, Unger M, et al. Nanobodies effectively modulate the enzymatic activity of CD38 and allow specific imaging of CD38+tumors in mouse models in vivo. Sci Rep. 2017;7(1):1–13.CrossRef Fumey W, Koenigsdorf J, Kunick V, Menzel S, Schütze K, Unger M, et al. Nanobodies effectively modulate the enzymatic activity of CD38 and allow specific imaging of CD38+tumors in mouse models in vivo. Sci Rep. 2017;7(1):1–13.CrossRef
27.
go back to reference Ghose J, Viola D, Terrazas C, Caserta E, Troadec E, Khalife J, et al. Daratumumab induces CD38 internalization and impairs myeloma cell adhesion. Oncoimmunology. 2018;7(10):e1486948. Ghose J, Viola D, Terrazas C, Caserta E, Troadec E, Khalife J, et al. Daratumumab induces CD38 internalization and impairs myeloma cell adhesion. Oncoimmunology. 2018;7(10):e1486948.
28.
go back to reference Nijhof IS, Casneuf T, van Velzen J, van Kessel B, Axel AE, Syed K, et al. CD38 expression and complement inhibitors affect response and resistance to daratumumab therapy in myeloma. Blood. 2016;128(7):959–70.CrossRef Nijhof IS, Casneuf T, van Velzen J, van Kessel B, Axel AE, Syed K, et al. CD38 expression and complement inhibitors affect response and resistance to daratumumab therapy in myeloma. Blood. 2016;128(7):959–70.CrossRef
29.
go back to reference Goodwin D, Meares C, Diamanti C, McCall M, Lai C, Torti F, et al. Use of specific antibody for rapid clearance of circulating blood background from radiolabeled tumor imaging proteins. Eur J Nucl Med. 1984;9(5):209–15.CrossRef Goodwin D, Meares C, Diamanti C, McCall M, Lai C, Torti F, et al. Use of specific antibody for rapid clearance of circulating blood background from radiolabeled tumor imaging proteins. Eur J Nucl Med. 1984;9(5):209–15.CrossRef
30.
go back to reference Ulaner GA, Sobol NB, O’Donoghue JA, Kirov AS, Riedl CC, Min R, et al. CD38-targeted Immuno-PET of Multiple Myeloma: From Xenograft Models to First-in-Human Imaging. Radiology. 2020;295(3):606–15.CrossRef Ulaner GA, Sobol NB, O’Donoghue JA, Kirov AS, Riedl CC, Min R, et al. CD38-targeted Immuno-PET of Multiple Myeloma: From Xenograft Models to First-in-Human Imaging. Radiology. 2020;295(3):606–15.CrossRef
31.
go back to reference Krishnan A, Adhikarla V, Poku EK, Palmer J, Chaudhry A, Biglang-Awa VE, et al. Identifying CD38+ cells in patients with multiple myeloma: first-in-human imaging using copper-64-labeled daratumumab. Blood Adv. 2020;4(20):5194–202.CrossRef Krishnan A, Adhikarla V, Poku EK, Palmer J, Chaudhry A, Biglang-Awa VE, et al. Identifying CD38+ cells in patients with multiple myeloma: first-in-human imaging using copper-64-labeled daratumumab. Blood Adv. 2020;4(20):5194–202.CrossRef
32.
go back to reference Krasniqi A, D’Huyvetter M, Devoogdt N, Frejd FY, Sorensen J, Orlova A, et al. Same-Day Imaging Using Small Proteins: Clinical Experience and Translational Prospects in Oncology. J Nucl Med. 2018;59(6):885–91.CrossRef Krasniqi A, D’Huyvetter M, Devoogdt N, Frejd FY, Sorensen J, Orlova A, et al. Same-Day Imaging Using Small Proteins: Clinical Experience and Translational Prospects in Oncology. J Nucl Med. 2018;59(6):885–91.CrossRef
33.
go back to reference Keyaerts M, Xavier C, Heemskerk J, Devoogdt N, Everaert H, Ackaert C, et al. Phase i study of 68Ga-HER2-Nanobody for PET/CT assessment of HER2 expression in breast carcinoma. J Nucl Med. 2016;57(1):27–33.CrossRef Keyaerts M, Xavier C, Heemskerk J, Devoogdt N, Everaert H, Ackaert C, et al. Phase i study of 68Ga-HER2-Nanobody for PET/CT assessment of HER2 expression in breast carcinoma. J Nucl Med. 2016;57(1):27–33.CrossRef
34.
go back to reference D’Huyvetter M, De Vos J, Caveliers V, Vaneycken I, Heemskerk J, Duhoux FP, et al. Phase I trial of (131)I-GMIB-Anti-HER2-VHH1, a new promising candidate for HER2-targeted radionuclide therapy in breast cancer patients. J Nucl Med. 2020 Dec; D’Huyvetter M, De Vos J, Caveliers V, Vaneycken I, Heemskerk J, Duhoux FP, et al. Phase I trial of (131)I-GMIB-Anti-HER2-VHH1, a new promising candidate for HER2-targeted radionuclide therapy in breast cancer patients. J Nucl Med. 2020 Dec;
35.
go back to reference Behr TM, Goldenberg DM, Becker W. Reducing the renal uptake of radiolabeled antibody fragments and peptides for diagnosis and therapy: present status, future prospects and limitations. Eur J Nucl Med. 1998;25(2):201–12.CrossRef Behr TM, Goldenberg DM, Becker W. Reducing the renal uptake of radiolabeled antibody fragments and peptides for diagnosis and therapy: present status, future prospects and limitations. Eur J Nucl Med. 1998;25(2):201–12.CrossRef
36.
go back to reference Vegt E, Wetzels JFM, Russel FGM, Masereeuw R, Boerman OC, van Eerd JE, et al. Renal uptake of radiolabeled octreotide in human subjects is efficiently inhibited by succinylated gelatin. J Nucl Med. 2006;47(3):432–6.PubMed Vegt E, Wetzels JFM, Russel FGM, Masereeuw R, Boerman OC, van Eerd JE, et al. Renal uptake of radiolabeled octreotide in human subjects is efficiently inhibited by succinylated gelatin. J Nucl Med. 2006;47(3):432–6.PubMed
37.
go back to reference Kwekkeboom DJ, de Herder WW, Kam BL, van Eijck CH, van Essen M, Kooij PP, et al. Treatment with the radiolabeled somatostatin analog [177 Lu-DOTA 0, Tyr3]octreotate: toxicity, efficacy, and survival. J Clin Oncol Off J Am Soc Clin Oncol. 2008;26(13):2124–30.CrossRef Kwekkeboom DJ, de Herder WW, Kam BL, van Eijck CH, van Essen M, Kooij PP, et al. Treatment with the radiolabeled somatostatin analog [177 Lu-DOTA 0, Tyr3]octreotate: toxicity, efficacy, and survival. J Clin Oncol Off J Am Soc Clin Oncol. 2008;26(13):2124–30.CrossRef
38.
go back to reference Green DJ, Orgun NN, Jones JC, Hylarides MD, Pagel JM, Hamlin DK, et al. A preclinical model of CD38-pretargeted radioimmunotherapy for plasma cell malignancies. Cancer Res. 2014;74(4):1179–89.CrossRef Green DJ, Orgun NN, Jones JC, Hylarides MD, Pagel JM, Hamlin DK, et al. A preclinical model of CD38-pretargeted radioimmunotherapy for plasma cell malignancies. Cancer Res. 2014;74(4):1179–89.CrossRef
39.
go back to reference Quelven I, Monteil J, Sage M, Saidi A, Mounier J, Bayout A, et al. (212)Pb α-Radioimmunotherapy Targeting CD38 in Multiple Myeloma: A Preclinical Study. J Nucl Med. 2020;61(7):1058–65.CrossRef Quelven I, Monteil J, Sage M, Saidi A, Mounier J, Bayout A, et al. (212)Pb α-Radioimmunotherapy Targeting CD38 in Multiple Myeloma: A Preclinical Study. J Nucl Med. 2020;61(7):1058–65.CrossRef
40.
go back to reference Cherel M, Gouard S, Gaschet J, Sai-Maurel C, Bruchertseifer F, Morgenstern A, et al. 213Bi radioimmunotherapy with an anti-mCD138 monoclonal antibody in a murine model of multiple myeloma. J Nucl Med. 2013;54(9):1597–604.CrossRef Cherel M, Gouard S, Gaschet J, Sai-Maurel C, Bruchertseifer F, Morgenstern A, et al. 213Bi radioimmunotherapy with an anti-mCD138 monoclonal antibody in a murine model of multiple myeloma. J Nucl Med. 2013;54(9):1597–604.CrossRef
41.
go back to reference Dawicki W, Allen KJH, Jiao R, Malo ME, Helal M, Berger MS, et al. Daratumumab-(225)Actinium conjugate demonstrates greatly enhanced antitumor activity against experimental multiple myeloma tumors. Oncoimmunology. 2019;8(8):1607673.CrossRef Dawicki W, Allen KJH, Jiao R, Malo ME, Helal M, Berger MS, et al. Daratumumab-(225)Actinium conjugate demonstrates greatly enhanced antitumor activity against experimental multiple myeloma tumors. Oncoimmunology. 2019;8(8):1607673.CrossRef
42.
go back to reference Minnix M, Adhikarla V, Caserta E, Poku E, Rockne R, Shively JE, et al. Comparison of CD38 targeted alpha- vs betaradionuclide therapy of disseminated multiple myeloma in an animal model. J Nucl Med. 2021;62(6):795–801.CrossRef Minnix M, Adhikarla V, Caserta E, Poku E, Rockne R, Shively JE, et al. Comparison of CD38 targeted alpha- vs betaradionuclide therapy of disseminated multiple myeloma in an animal model. J Nucl Med. 2021;62(6):795–801.CrossRef
Metadata
Title
A non-internalised CD38-binding radiolabelled single-domain antibody fragment to monitor and treat multiple myeloma
Authors
Elodie Duray
Margaux Lejeune
Frederic Baron
Yves Beguin
Nick Devoogdt
Ahmet Krasniqi
Yoline Lauwers
Yong Juan Zhao
Matthias D’Huyvetter
Mireille Dumoulin
Jo Caers
Publication date
01-12-2021
Publisher
BioMed Central
Published in
Journal of Hematology & Oncology / Issue 1/2021
Electronic ISSN: 1756-8722
DOI
https://doi.org/10.1186/s13045-021-01171-6

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