Related Experiment Video
Updated: Jan 16, 2026

Magnetic-, Acoustic-, and Optical-Triple-Responsive Microbubbles for Magnetic Hyperthermia and Pothotothermal Combination Cancer Therapy
Published on: May 22, 2020
Biomineralized microspheres trigger synergistic calcicoptosis-ferroptosis for enhanced non-small cell lung cancer
Lingxiao Yang1, Kaiyue Wang2, Jia Dong3
1Department of Respiratory and Critical Care Medicine, the Fourth Affiliated Hospital of School of Medicine, and International School of Medicine, International Institutes of Medicine, Zhejiang University, Yiwu 322000, China.
Abstract:
Non-small cell lung cancer (NSCLC) is characterized by significant tumor heterogeneity and the development of drug resistance, which greatly limit the efficacy of conventional targeted therapies. Emerging evidence has increasingly highlighted the therapeutic potential of inducing regulated cell death modalities such as calcicoptosis and ferroptosis in overcoming these challenges. In this study, we developed an inhalable, pH-responsive, multifunctional drug delivery system (PCAL microspheres) to address the limitations of traditional single-target therapies. The PCAL microspheres consist of a core composed of poly(D, l-lactide-co-glycolide) (PLGA: P) loaded with erlotinib (ERL) and artesunate (ART), encapsulated within a calcium phosphate (CaP: CA)-based mineralized shell mediated by bovine serum albumin. The surface of the microspheres is further functionalized with iron-saturated lactoferrin (Holo-Lf: L), enabling active targeting of lung cancer cells. Upon delivery, ERL released from PCAL inhibits tumor cell proliferation by suppressing epidermal growth factor receptor (EGFR) activation. ART induces intracellular Ca2+ accumulation by inhibiting sarcoplasmic/endoplasmic reticulum Ca2+-ATPase (SERCA) and promoting CaP degradation, leading to endoplasmic reticulum stress and mitochondrial dysfunction. Concurrently, ART and Holo-Lf jointly induce ferroptosis, resulting in plasma membrane pore formation and further amplification of Ca2+ influx. This 'calcicoptosis-ferroptosis' dual pathway generated a synergistic antitumor effect. In a mouse model of lung cancer, inhalation of PCAL significantly inhibited tumor growth. Moreover, the treatment exhibited favorable safety profiles without detectable systemic toxicity. These findings demonstrate that nebulized PCAL microspheres provide a promising and innovative strategy for the effective treatment of NSCLC. STATEMENT OF SIGNIFICANCE: Non-small cell lung cancer (NSCLC) remains one of the most challenging cancers to treat, largely due to tumor heterogeneity and rapid development of drug resistance. In this work, we developed inhalable PCAL microspheres, a targeted drug delivery system that acts directly in the lungs. Unlike conventional single-pathway therapies, PCAL combines erlotinib and artesunate within a PLGA core, coated with calcium phosphate and modified with iron-saturated lactoferrin for tumor targeting. This design activates a dual mechanism-calcicoptosis (calcium overload-induced cell death) and ferroptosis (iron-dependent lipid peroxidation)-leading to a powerful synergistic antitumor effect. In vivo studies demonstrated significant tumor regression without systemic toxicity, suggesting that PCAL as a promising and impactful strategy for NSCLC treatment.
Insights
Inhalable PCAL microspheres combine erlotinib and artesunate to induce dual cell death pathways, calcicoptosis and ferroptosis, effectively treating non-small cell lung cancer (NSCLC). This novel approach shows significant tumor inhibition with minimal systemic toxicity in preclinical models.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Non-small cell lung cancer (NSCLC) presents challenges due to tumor heterogeneity and drug resistance.
- Conventional therapies often fall short against complex NSCLC tumors.
- Inducing regulated cell death, such as calcicoptosis and ferroptosis, offers a promising alternative strategy.
Purpose of the Study:
- To develop an inhalable, pH-responsive drug delivery system (PCAL microspheres) for NSCLC treatment.
- To leverage a dual-pathway cell death mechanism to overcome therapeutic limitations.
- To enhance targeted delivery and synergistic efficacy against NSCLC.
Main Methods:
- PCAL microspheres were engineered with a PLGA core containing erlotinib (ERL) and artesunate (ART), a calcium phosphate (CaP) shell, and lactoferrin (Lf) functionalization.
- The system was designed for pH-responsiveness and active targeting of lung cancer cells.
- In vitro and in vivo studies were conducted to evaluate drug release, cell death induction, and antitumor efficacy in a mouse model.
Main Results:
- PCAL microspheres demonstrated controlled release of ERL and ART, activating calcicoptosis and ferroptosis pathways.
- ERL inhibited EGFR signaling, while ART induced Ca2+ overload and ferroptosis, amplified by lactoferrin targeting.
- Inhalation of PCAL significantly suppressed tumor growth in a lung cancer mouse model with a favorable safety profile.
Conclusions:
- Nebulized PCAL microspheres represent a novel, targeted strategy for NSCLC treatment.
- The synergistic induction of calcicoptosis and ferroptosis offers enhanced therapeutic efficacy.
- This approach shows potential for overcoming drug resistance and improving NSCLC patient outcomes.
More Related Videos
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against...
Combination Therapies and Personalized Medicine
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...

