Anticancer Activity of Novel Difluorinated Curcumin Analog and Its Inclusion Complex with 2-Hydroxypropyl-β-Cyclodextrin against Pancreatic Cancer

Author:

Bhattacharyya Sangita1,Ghosh Hindole1,Covarrubias-Zambrano Obdulia1,Jain Krishan1ORCID,Swamy K. Venkateswara2,Kasi Anup3,Hamza Ameer4ORCID,Anant Shrikant1ORCID,VanSaun Michael1,Weir Scott J.135ORCID,Bossmann Stefan H.1,Padhye Subhash B.16,Dandawate Prasad1ORCID

Affiliation:

1. Department of Cancer Biology, University of Kansas Medical Center, Kansas City, KS 66103, USA

2. MIT School of Bioengineering, Sciences & Research, MIT Art, Design and Technology University, Pune 412201, India

3. Division of Medical Oncology, University of Kansas, Kansas City, KS 66160, USA

4. Pathology and Laboratory Medicine, University of Kansas, Kansas City, KS 66160, USA

5. Institute for Advancing Medical Innovation, University of Kansas Medical Center, Kansas City, KS 66160, USA

6. Interdisciplinary Science & Technology Research Academy (ISTRA), Azam Campus, University of Pune, Pune 411001, India

Abstract

Pancreatic ductal adenocarcinoma (PDAC) is the primary reason for cancer-related deaths in the US. Genetic mutations, drug resistance, the involvement of multiple signaling pathways, cancer stem cells (CSCs), and desmoplastic stroma, which hinders drug penetrance, contribute to poor chemotherapeutic efficacy. Hence, there is a need to identify novel drugs with improved delivery to improve treatment outcomes. Curcumin is one such compound that can inhibit multiple signaling pathways and CSCs. However, curcumin’s clinical applicability for treating PDAC is limited because of its poor solubility in water and metabolic instability. Hence, we developed a difluorinated curcumin (CDF) analog that accumulates selectively in the pancreas and inhibits PDAC growth in vitro and in vivo. In the present work, we developed its 2-hydroxy-propyl-β-cyclodextrin (HCD) inclusion complex to increase its water solubility and hydrolytic stability. The CDFHCD inclusion complex was characterized by spectroscopic, thermal, and microscopic techniques. The inclusion complex exhibited increased aqueous solubility, hydrolytic stability, and antiproliferative activity compared to parent CDF. Moreover, CDF and CDFHCD inhibited colony and spheroid formation, and induced cell cycle and apoptosis in PDAC cell lines. Hence, CDFHCD self-assembly is an efficient approach to increase water solubility and anticancer therapeutic efficacy, which now warrants advancement towards a clinical proof of concept in PDAC patients.

Funder

Department of Defense

American Gastroenterological Association Research Scholar Award

NIH COBRE program of the NCRR

The University of Kansas Cancer Center

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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