Polyproline‐Polyornithine Diblock Copolymers with Inherent Mitochondria Tropism

C Camilla Pegoraro (Príncipe Felipe Research Center Polymer Therapeutics Lab. Valencia 46012 Spain) E Ekaterina Karpova (Curapath Av. Benjamín Franklin, 19, Paterna Valencia 46980 Spain) Y Yusuf Qutbuddin (Max Planck Institute of Biochemistry Am Klopferspitz 18 82152 Martinsried Germany) E Esther Masiá Sanchis (Príncipe Felipe Research Center Polymer Therapeutics Lab. Valencia 46012 Spain) P Pavels Dimitrijevs (Latvian Institute of Organic Synthesis Aizkraukles Street 21 Riga LV‐1006 Latvia) C Cristián Huck‐Iriart (Experiment Division ALBA Synchrotron Light Source Carrer de la Llum 2‐26 Cerdanyola del Vallès Barcelona Spain) S Svetozar Gavrilović (Max Planck Institute of Biochemistry Am Klopferspitz 18 82152 Martinsried Germany) P Pavel Arsenyan (Latvian Institute of Organic Synthesis Aizkraukles Street 21 Riga LV‐1006 Latvia) P Petra Schwille C Carles Felip‐León (Curapath Av. Benjamín Franklin, 19, Paterna Valencia 46980 Spain) A Aroa Duro‐Castaño (Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain) I Inmaculada Conejos‐Sánchez (Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain) M María J. Vicent (Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain)

Abstract

AbstractMitochondria play critical roles in regulating cell fate, with dysfunction correlating with the development of multiple diseases, emphasizing the need for engineered nanomedicines that cross biological barriers. Said nanomedicines often target fluctuating mitochondrial properties and/or present inefficient/insufficient cytosolic delivery (resulting in poor overall activity), while many require complex synthetic procedures involving targeting residues (hindering clinical translation). The synthesis/characterization of polypeptide‐based cell penetrating diblock copolymers of poly‐L‐ornithine (PLO) and polyproline (PLP) (PLOn‐PLPm, n:m ratio 1:3) are described as mitochondria‐targeting nanocarriers. Synthesis involves a simple two‐step methodology based on N‐carboxyanhydride ring‐opening polymerization, with the scale‐up optimization using a “design of experiments” approach. The molecular mechanisms behind targetability and therapeutic activity are investigated through physical/biological processes for diblock copolymers themselves or as targeting moieties in a poly‐L‐glutamic (PGA)‐based conjugate. Diblock copolymers prompt rapid cell entry via energy‐independent mechanisms and recognize mitochondria through the mitochondria‐specific phospholipid cardiolipin (CL). Stimuli‐driven conditions and mitochondria polarization dynamics, which decrease efficacy depending on disease type/stage, do not compromise diblock copolymer uptake/targetability. Diblock copolymers exhibit inherent concentration‐dependent anti‐tumorigenic activity at the mitochondrial level. The diblock copolymer conjugate possesses improved safety, significant cell penetration, and mitochondrial accumulation via cardiolipin recognition. These findings may support the development of efficient and safe mitochondrial‐targeting nanomedicines.

Article Details

Volume / Issue Vol. 37, Issue 8
Published February 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

C

Camilla Pegoraro

Príncipe Felipe Research Center Polymer Therapeutics Lab. Valencia 46012 Spain

E

Ekaterina Karpova

Curapath Av. Benjamín Franklin, 19, Paterna Valencia 46980 Spain

Y

Yusuf Qutbuddin

Max Planck Institute of Biochemistry Am Klopferspitz 18 82152 Martinsried Germany

E

Esther Masiá Sanchis

Príncipe Felipe Research Center Polymer Therapeutics Lab. Valencia 46012 Spain

P

Pavels Dimitrijevs

Latvian Institute of Organic Synthesis Aizkraukles Street 21 Riga LV‐1006 Latvia

C

Cristián Huck‐Iriart

Experiment Division ALBA Synchrotron Light Source Carrer de la Llum 2‐26 Cerdanyola del Vallès Barcelona Spain

S

Svetozar Gavrilović

Max Planck Institute of Biochemistry Am Klopferspitz 18 82152 Martinsried Germany

P

Pavel Arsenyan

Latvian Institute of Organic Synthesis Aizkraukles Street 21 Riga LV‐1006 Latvia

P

Petra Schwille

C

Carles Felip‐León

Curapath Av. Benjamín Franklin, 19, Paterna Valencia 46980 Spain

A

Aroa Duro‐Castaño

Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain

I

Inmaculada Conejos‐Sánchez

Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain

M

María J. Vicent

Polymer Therapeutics Lab Prince Felipe Research Center (CIPF) C/Eduardo Primo Yúfera 3 Valencia 46012 Spain