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Updated: May 7, 2026

Detection of Mitochondria Membrane Potential to Study CLIC4 Knockdown-induced HN4 Cell Apoptosis In Vitro
Published on: July 17, 2018
An antimicrobial peptidomimetic induces Mucorales cell death through mitochondria-mediated apoptosis
E Magda Barbu1, Fazal Shirazi, Danielle M McGrath
1David H. Koch Center, Department of Genitourinary Medical Oncology, the University of Texas M. D. Anderson Cancer Center, Houston, Texas, United States of America ; Department of Infectious Diseases, the University of Texas M. D. Anderson Cancer Center, Houston, Texas, United States of America.
Abstract:
The incidence of mucormycosis has dramatically increased in immunocompromised patients. Moreover, the array of cellular targets whose inhibition results in fungal cell death is rather limited. Mitochondria have been mechanistically identified as central regulators of detoxification and virulence in fungi. Our group has previously designed and developed a proteolytically-resistant peptidomimetic motif D(KLAKLAK)2 with pleiotropic action ranging from targeted (i.e., ligand-directed) activity against cancer and obesity to non-targeted activity against antibiotic resistant gram-negative rods. Here we evaluated whether this non-targeted peptidomimetic motif is active against Mucorales. We show that D(KLAKLAK)2 has marked fungicidal action, inhibits germination, and reduces hyphal viability. We have also observed cellular changes characteristic of apoptosis in D(KLAKLAK)2-treated Mucorales cells. Moreover, the fungicidal activity was directly correlated with vacuolar injury, mitochondrial swelling and mitochondrial membrane depolarization, intracellular reactive oxygen species accumulation (ROS), and increased caspase-like enzymatic activity. Finally, these apoptotic features were prevented by the addition of the ROS scavenger N-acetyl-cysteine indicating mechanistic pathway specificity. Together, these findings indicate that D(KLAKLAK)2 makes Mucorales exquisitely susceptible via mitochondrial injury-induced apoptosis. This prototype may serve as a candidate drug for the development of translational applications against mucormycosis and perhaps other fungal infections.
Insights
The peptidomimetic D(KLAKLAK)2 shows potent fungicidal activity against Mucorales by inducing mitochondrial injury and apoptosis. This offers a promising new therapeutic strategy for mucormycosis and other fungal infections.
Area of Science:
- Mycology
- Biochemistry
- Drug Discovery
Background:
- Mucormycosis incidence is rising in immunocompromised individuals.
- Limited cellular targets exist for antifungal therapies.
- Mitochondria are key regulators of fungal detoxification and virulence.
Purpose of the Study:
- To evaluate the efficacy of the peptidomimetic D(KLAKLAK)2 against Mucorales.
- To investigate the mechanism of action of D(KLAKLAK)2 in fungal cells.
Main Methods:
- Treatment of Mucorales with D(KLAKLAK)2.
- Assessment of fungal viability, germination, and hyphal growth.
- Analysis of cellular changes including apoptosis, vacuolar injury, mitochondrial function, ROS levels, and caspase-like activity.
- Evaluation of N-acetyl-cysteine's effect on D(KLAKLAK)2-induced apoptosis.
Main Results:
- D(KLAKLAK)2 demonstrated significant fungicidal action, inhibited germination, and reduced hyphal viability.
- Cellular changes indicative of apoptosis were observed in treated Mucorales.
- Fungicidal activity correlated with vacuolar injury, mitochondrial swelling, membrane depolarization, ROS accumulation, and increased caspase-like activity.
- N-acetyl-cysteine prevented D(KLAKLAK)2-induced apoptotic features, confirming pathway specificity.
Conclusions:
- D(KLAKLAK)2 effectively targets Mucorales through mitochondrial injury-induced apoptosis.
- This peptidomimetic represents a potential therapeutic candidate for mucormycosis and other fungal infections.
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