Macrophage Hitchhiking Nanoparticles for the Treatment of Myocardial Infarction: An In Vitro and In Vivo Study

Author:

Torrieri Giulia1,Iqbal Imran2,Fontana Flavia1,Talman Virpi3,Liljenbäck Heidi24,Putri Andriana2,Nammas Wail2,Rajander Johan5,Guo‐Li Xiang26,Low Philip S.7,Teesalu Tambet89,Roivainen Anne24610,Hirvonen Jouni1,Ruskoaho Heikki3,Balasubramanian Vimalkumar11,Saraste Antti2101213,Santos Hélder A.11415ORCID

Affiliation:

1. Drug Research Program Division of Pharmaceutical Chemistry and Technology Faculty of Pharmacy University of Helsinki FI‐00140 Helsinki Finland

2. Turku PET Centre University of Turku 20521 Turku Finland

3. Drug Research Program Division of Pharmacology and Pharmacotherapy Faculty of Pharmacy University of Helsinki FI‐00140 Helsinki Finland

4. Turku Center for Disease Modeling University of Turku FI‐20014 Turku Finland

5. Accelerator Laboratory Åbo Akademi University Turku FI‐20500 Finland

6. InFLAMES Research Flagship Center University of Turku Turku Finland

7. Department of Chemistry Purdue University West Lafayette IN 47907‐2084 USA

8. Laboratory of Cancer Biology Institute of Biomedicine and Translational Medicine Centre of Excellence for Translational Medicine University of Tartu Tartu 50411 Estonia

9. Cancer Research Center Sanford‐Burnham Medical Research Institute La Jolla California 92037 USA

10. Turku PET Centre Turku University Hospital 20521 Turku Finland

11. Chemical and Pharmaceutical Development Bayer Oy FI‐20210 Turku Finland

12. Heart Center Turku University Hospital 20521 Turku Finland

13. Institute of Clinical Medicine Turku University Hospital 20520 Turku Finland

14. Department of Biomedical Engineering University Medical Center Groningen University of Groningen A. Deusinglaan 1 9713 AV Groningen The Netherlands

15. W.J. Kolff Institute for Biomedical Engineering and Materials Science University Medical Center Groningen University of Groningen A. Deusinglaan 1 9713 AV Groningen The Netherlands

Abstract

AbstractMyocardial infarction (MI) is the leading cause of death worldwide. However, current therapies are unable to restore the function of the injured myocardium. Advanced approaches, such as stimulation of cardiomyocyte (CM) proliferation are promising, but suffer from poor pharmacokinetics and possible systemic adverse effects. Nanomedicines can be a solution to the above‐mentioned drawbacks. However, targeting the cardiac tissue still represents a challenge. Herein, a MI‐selective precision nanosystem is developed, that relies on the heart targeting properties of atrial natriuretic peptide (ANP) and lin‐TT1 peptide‐mediated hitchhiking on M2‐like macrophages. The system based on pH‐responsive putrescine‐modified acetalated dextran (Putre‐AcDEX) nanoparticles, shows biocompatibility with cultured cardiac cells, and ANP receptor‐dependent interaction with CMs. Moreover, treatment with nanoparticles (NPs) loaded with two pleiotropic cellular self‐renewal promoting compounds, CHIR99021 and SB203580, induces a 4‐fold increase in bromodeoxyuridine (BrdU) incorporation in primary cardiomyocytes compared to control. In vivo studies confirm that M2‐like macrophages targeting by lin‐TT1 peptide enhances the heart targeting of ANP. In addition, NP administration does not alter the immunological profile of blood and spleen, showing the short‐term safety of the developed system in vivo. Overall, the study results in the development of a peptide‐guided precision nanosystem for delivery of therapeutic compounds to the infarcted heart.

Funder

Paavo Nurmen Säätiö

Suomen Kulttuurirahasto

Orionin Tutkimussäätiö

Sigrid Juséliuksen Säätiö

Academy of Finland

Eesti Teadusagentuur

Jane ja Aatos Erkon Säätiö

Biocenter Finland

Luonnontieteiden ja Tekniikan Tutkimuksen Toimikunta

Terveyden Tutkimuksen Toimikunta

Helsingin Yliopiston Tiedesäätiö

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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