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Updated: Oct 17, 2025

Measurement of Heme Synthesis Levels in Mammalian Cells
Published on: July 9, 2015
Heme Sequestration Effectively Suppresses the Development and Progression of Both Lung Adenocarcinoma and Squamous
Sanchareeka Dey1, Adnin Ashrafi1, Chantal Vidal1
1Department of Biological Sciences, University of Texas at Dallas, Richardson, Texas.
Abstract:
Lung adenocarcinoma (ADC) and squamous cell carcinoma (SCC) are two most common subtypes of lung cancer. Here, to identify new, targetable molecular properties of both subtypes, we monitored changes in the levels of heme- and oxidative phosphorylation (OXPHOS)-related proteins during lung tumorigenesis. Heme is a central molecule for oxidative metabolism and ATP generation via OXPHOS. Notably, both lung ADC and SCC tumors can be induced in the genetically engineered KLLuc mouse model harboring the G12D Kras mutation and a conditional Lkb1 knockout. We found that the levels of the rate-limiting heme synthesis enzyme ALAS1 and uptake protein SLC48A1, along with OXPHOS complex subunits, progressively increased as lung tumorigenesis advanced. Our data demonstrated that elevated levels of heme- and OXPHOS-related proteins were associated with both ADC and SCC. Importantly, treatment of KLLuc mice with a heme-sequestering protein, HeSP2, that inhibits heme uptake in tumor cells effectively arrested lung tumor progression, and both ADC and SCC tumors were strongly suppressed. Additionally, HeSP2 effectively suppressed the growth of both SCC and ADC tumor xenografts in NOD/SCID mice. Further analyses indicated that HeSP2 effectively diminished OXPHOS in both ADC and SCC, reduced angiogenesis, alleviated tumor hypoxia, and suppressed cell proliferation. These results show that the advancing of lung tumorigenesis requires progressive increase in cellular heme synthesis and uptake, leading to intensified OXPHOS activity and ATP generation and promoting aggressive tumorigenic functions. IMPLICATIONS: Heme sequestration is an effective strategy for the suppression of both ADC and SCC tumor initiation and development.
Insights
Lung cancer subtypes, adenocarcinoma (ADC) and squamous cell carcinoma (SCC), require increased heme synthesis and oxidative phosphorylation (OXPHOS) for growth. Heme sequestration effectively suppressed both ADC and SCC tumor progression.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Lung adenocarcinoma (ADC) and squamous cell carcinoma (SCC) are the most prevalent lung cancer subtypes.
- Heme is crucial for cellular metabolism and ATP generation through oxidative phosphorylation (OXPHOS).
- Understanding molecular drivers of lung tumorigenesis is key for developing targeted therapies.
Purpose of the Study:
- To identify targetable molecular alterations in lung ADC and SCC during tumorigenesis.
- To investigate the role of heme metabolism and OXPHOS in lung cancer progression.
- To evaluate the therapeutic potential of targeting heme uptake in lung cancer.
Main Methods:
- Utilized a genetically engineered mouse model (KLLuc) for lung ADC and SCC induction.
- Monitored heme synthesis and OXPHOS-related protein levels during tumor development.
- Administered a heme-sequestering protein (HeSP2) to assess its effect on tumor growth in mouse models and xenografts.
Main Results:
- Progressive increase in heme synthesis (ALAS1, SLC48A1) and OXPHOS complex subunits observed during lung tumorigenesis in both ADC and SCC.
- HeSP2 treatment significantly arrested lung tumor progression in KLLuc mice and suppressed ADC and SCC xenograft growth.
- HeSP2 diminished OXPHOS, reduced angiogenesis, alleviated hypoxia, and suppressed proliferation in ADC and SCC tumors.
Conclusions:
- Advancing lung tumorigenesis necessitates increased heme synthesis and uptake, enhancing OXPHOS activity and promoting aggressive tumor functions.
- Heme sequestration represents a promising therapeutic strategy for suppressing both ADC and SCC initiation and development.
- Targeting heme metabolism offers a novel approach for lung cancer treatment.
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