Rationale Design of a Liposomal Formulated Phenanthro[9, 10-d]imidazole-Based ZnII Complex as a Targeted Anticancer Unit

Abstract The development of targeted and multifunctional anticancer nanoplatforms remains challenging due to limited selectivity, systemic toxicity, drug resistance, and off-target effects associated with conventional platinum-based chemotherapy. Zn(II) complexes have emerged as promising low-toxicity metal-based alternatives, exhibiting enhanced cytotoxicity toward cancer cells compared to healthy cells. In this study, a Schiff base ligand (K) was synthesized via condensation of 4-(1H-phenanthro[9,10-d]imidazol-2-yl)aniline and salicylaldehyde followed by complexation with Zn(II) to form a Zn(II) complex (S1). To enhance site-specific cellular uptake, Zn(II) complex S1 was encapsulated within folic acid-functionalized 10,12-pentacosadiynoic acid (FA-PCDA) and 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC)-based liposomes via molecular co-assembly, significantly improving stability and targeting capability. The resulting liposomal formulation of Zn(II) complex S1 (Lip-S1) exhibited characteristic fluorescence properties, enabling potential imaging applications. Lip-S1 selectively targeted folate receptor-expressing cervical cancer (HeLa) cells, demonstrating enhanced anticancer efficacy with a half maximal inhibitory concentration (IC50) of 143.8 μg mL–1 compared to free S1 and bare liposomes. Functional assays revealed that Lip-S1 inhibited cell proliferation, migration, and tumor spheroid growth while inducing apoptosis through mitochondrial membrane depolarization, elevated intracellular reactive oxygen species (ROS), caspase 3/7 activation, and modulation of apoptotic proteins (Bax upregulation, Bcl-2 downregulation). ROS scavenging studies confirmed that apoptosis is primarily mediated by oxidative stress linked to the PI3K/AKT (phosphatidylinositol 3 kinase/protein kinase B) signaling pathway. Enhanced cellular internalization of Lip-S1 relative to controls was also observed. These results highlight Lip-S1 as a targeted, fluorescence-trackable nanoplatform for ROS-mediated anticancer therapy.

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Publication Details

Journal
ACS Applied Bio Materials
Published
2026-10-06
DOI
https://doi.org/10.1021/acsabm.6c01217
Primary Topic
Metal complexes synthesis and properties
Type
article
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article

Rationale Design of a Liposomal Formulated Phenanthro[9, 10-d]imidazole-Based ZnII Complex as a Targeted Anticancer Unit

Priyadip Das, Atanu Barik, Mallayasamy Siva, Gaurav Das et al.
ACS Applied Bio Materials
Metal complexes synthesis and properties
article

Rationale Design of a Liposomal Formulated Phenanthro[9, 10-d]imidazole-Based ZnII Complex as a Targeted Anticancer Unit

Priyadip Das, Atanu Barik, Mallayasamy Siva, Gaurav Das, Biswanath Maity, Adele Stewart, Debojit Talukdar, Anushree Lye, Nanjundan Raghul
article en

Abstract

Abstract The development of targeted and multifunctional anticancer nanoplatforms remains challenging due to limited selectivity, systemic toxicity, drug resistance, and off-target effects associated with conventional platinum-based chemotherapy. Zn(II) complexes have emerged as promising low-toxicity metal-based alternatives, exhibiting enhanced cytotoxicity toward cancer cells compared to healthy cells. In this study, a Schiff base ligand (K) was synthesized via condensation of 4-(1H-phenanthro[9,10-d]imidazol-2-yl)aniline and salicylaldehyde followed by complexation with Zn(II) to form a Zn(II) complex (S1). To enhance site-specific cellular uptake, Zn(II) complex S1 was encapsulated within folic acid-functionalized 10,12-pentacosadiynoic acid (FA-PCDA) and 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC)-based liposomes via molecular co-assembly, significantly improving stability and targeting capability. The resulting liposomal formulation of Zn(II) complex S1 (Lip-S1) exhibited characteristic fluorescence properties, enabling potential imaging applications. Lip-S1 selectively targeted folate receptor-expressing cervical cancer (HeLa) cells, demonstrating enhanced anticancer efficacy with a half maximal inhibitory concentration (IC50) of 143.8 μg mL–1 compared to free S1 and bare liposomes. Functional assays revealed that Lip-S1 inhibited cell proliferation, migration, and tumor spheroid growth while inducing apoptosis through mitochondrial membrane depolarization, elevated intracellular reactive oxygen species (ROS), caspase 3/7 activation, and modulation of apoptotic proteins (Bax upregulation, Bcl-2 downregulation). ROS scavenging studies confirmed that apoptosis is primarily mediated by oxidative stress linked to the PI3K/AKT (phosphatidylinositol 3 kinase/protein kinase B) signaling pathway. Enhanced cellular internalization of Lip-S1 relative to controls was also observed. These results highlight Lip-S1 as a targeted, fluorescence-trackable nanoplatform for ROS-mediated anticancer therapy.

ACS Applied Bio Materials
University of Iowa (US), Bhabha Atomic Research Centre (IN), Homi Bhabha National Institute (IN), Chittaranjan National Cancer Institute (IN)
Openalex Percentile: Top 16%
Metal complexes synthesis and properties
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