HCC-1171 Xenograft Model Service for NSCLC

The HCC-1171 xenograft model is a well-established preclinical platform for evaluating therapeutic strategies against KRAS-mutant non-small cell lung cancer (NSCLC), one of the most challenging oncogenic drivers in thoracic malignancies. Alfa Cytology offers a comprehensive HCC-1171 xenograft model service tailored to accelerate your oncology drug discovery pipeline, providing robust in vivo data from tumor establishment through endpoint analysis with rigorous quality control and regulatory-compliant reporting.
Overview of HCC-1171 Xenograft Model for NSCLC
Non-small cell lung cancer (NSCLC) accounts for approximately 85% of all lung cancer cases and remains the leading cause of cancer-related mortality worldwide. Among the molecular subtypes of NSCLC, KRAS-mutant adenocarcinoma represents a major therapeutic challenge due to its aggressive biology, propensity for metastasis, and historical resistance to conventional targeted therapies. The HCC-1171 cell line, originally established from a 58-year-old male patient with lung adenocarcinoma, harbors the KRAS G12C oncogenic mutation together with TP53 alterations, making it a clinically relevant model for studying KRAS-driven tumor progression and evaluating novel therapeutic interventions in a physiologically relevant in vivo setting.
Fig 1. Antitumor efficacy in two KRAS G12C-driven NSCLC tumor models: (a) NCI-H358 and (b) NCI-H2122. (Endres, Nicholas F., et al., 2026)
Cell line-derived xenograft (CDX) models utilizing HCC-1171 cells provide a reproducible and cost-effective preclinical system for assessing tumor growth dynamics, drug efficacy, pharmacokinetics, and biomarker responses. When implanted into immunodeficient mice, HCC-1171 cells reliably form tumors that recapitulate key histopathological and molecular features of human lung adenocarcinoma, including epithelial morphology, KRAS pathway activation, and sensitivity profiles to emerging KRAS G12C inhibitors. These models bridge the gap between in vitro screening and clinical translation, enabling researchers to generate high-confidence efficacy data prior to advancing compounds into more complex and resource-intensive development stages.
Cell Line Information: HCC-1171
The HCC-1171 cell line is a well-characterized human lung adenocarcinoma cell line that serves as a robust foundation for preclinical xenograft studies. Below is a comprehensive summary of its biological and culture characteristics:
| Parameter |
Details |
| Cell Line Name |
HCC-1171 |
| Species |
Homo sapiens (Human) |
| Tissue of Origin |
Lung |
| Histology |
Non-Small Cell Lung Cancer (NSCLC), Adenocarcinoma |
| Patient Demographics |
58-year-old male, Caucasian |
| Key Driver Mutation |
KRAS G12C (c.34G>T) |
| Additional Mutations |
TP53 (c.740A>T) |
| Cell Morphology |
Epithelial-like, adherent growth |
| Doubling Time |
~47.5 hours |
| Culture Medium |
RPMI 1640 supplemented with 10% fetal bovine serum (FBS) |
| Culture Conditions |
37°C, 5% CO₂, 95% relative humidity |
| Biosafety Level |
BSL-1 |
| Depositor / Source |
Korean Cell Line Bank (KCLB 71171) |
| Cell Line Repository |
KCLB; also referenced in CCLE and Sanger COSMIC databases |
| STR Authentication |
Authenticated by short tandem repeat (STR) profiling |
| Tumorigenicity |
High tumorigenic potential in immunodeficient mice |
| Tumor Formation |
Reliable subcutaneous and orthotopic engraftment |
| Recommended Inoculum |
1 × 10⁶ to 5 × 10⁶ cells per mouse (subcutaneous) |
| Tumor Latency |
Approximately 7–14 days post-inoculation |
| Tumor Growth Pattern |
Aggressive, exponential growth with consistent take rates >90% |
Our Services
At Alfa Cytology, we leverage our extensive expertise in preclinical oncology model development to deliver validated HCC-1171 xenograft studies with rapid turnaround times and comprehensive data packages. Our integrated service platform spans from tumor establishment and in-life monitoring through histopathological and molecular endpoint analysis, ensuring that your compound receives rigorous, publication-quality evaluation in a clinically relevant KRAS-mutant NSCLC setting.
Workflow of HCC-1171 Xenograft Model Construction
The construction of a reliable HCC-1171 xenograft model follows a standardized, quality-controlled workflow designed to ensure reproducible tumor growth, consistent pharmacological responses, and regulatory-compliant data generation. Each study is initiated with thorough cell line authentication and host animal health screening, followed by systematic tumor implantation, monitoring, and endpoint analysis.
- Cell Line Preparation and Quality Control: HCC-1171 cells are recovered from cryopreserved stocks and expanded under standardized culture conditions (RPMI 1640 + 10% FBS, 37°C, 5% CO₂). Prior to inoculation, cells undergo mycoplasma testing, STR authentication, and viability assessment to confirm identity and ensure optimal engraftment potential.
- Host Mouse Selection and Acclimatization: Immunodeficient mouse strains—most commonly athymic nude (nu/nu), NOD-SCID, or NSG (NOD-scid IL2Rγnull) mice—are selected based on study objectives and immune requirements. Animals are acclimatized for a minimum of 5–7 days under controlled environmental conditions with health monitoring and body weight baseline recording.
- Tumor Cell Inoculation: Log-phase HCC-1171 cells are harvested, washed, and resuspended in phosphate-buffered saline (PBS) or PBS/Matrigel mixture (typically 1:1 v/v). For subcutaneous models, 1 × 106 to 5 × 106 cells in a volume of 100–200 µL are injected into the right flank. Orthotopic models involve intrathoracic injection to recapitulate the native tumor microenvironment and metastatic behavior.
- Tumor Growth Monitoring and Randomization: Tumor development is monitored by caliper measurement twice weekly, with tumor volume calculated using the modified ellipsoid formula (V = 0.5 × length × width²). Mice are randomized into treatment groups when tumors reach a palpable volume of 100–200 mm³, ensuring balanced baseline tumor sizes across cohorts. Body weight and clinical signs are recorded concurrently.
- Treatment Administration and In-Life Assessment: Test articles are administered according to the predefined dosing regimen (route, frequency, and duration). Tumor volume and body weight are measured at regular intervals throughout the treatment period. Tumor growth inhibition (TGI), tumor growth delay (TGD), and partial or complete response rates are calculated relative to vehicle-treated controls.
- Endpoint Analysis and Data Reporting: At study termination, tumors are excised, weighed, and processed for downstream analyses. Standard endpoints include hematoxylin and eosin (H&E) histopathology, immunohistochemistry (IHC) for proliferation (Ki-67) and apoptosis (cleaved caspase-3) markers, pharmacokinetic/pharmacodynamic (PK/PD) assessment, and biomarker profiling. A comprehensive study report with statistical analysis is delivered to the client.
Fig 2. HCC-1171 xenograft model construction workflow.
Case Study-HCC-1171 Xenograft Model Development
In a representative preclinical study, HCC-1171 cells were successfully engrafted into immunodeficient mice to evaluate the efficacy of a novel KRAS G12C-targeted therapeutic candidate. Following subcutaneous inoculation, tumors established consistently with a take rate exceeding 90%, reaching the target volume range within 10–14 days. Treatment cohorts received the investigational compound via oral gavage on a defined schedule, while vehicle controls received the formulation buffer. Tumor growth was monitored biweekly via caliper measurement, and body weights were recorded to assess treatment tolerability. At study endpoint, excised tumors were subjected to comprehensive histopathological and molecular characterization, revealing dose-dependent reductions in tumor burden, decreased Ki-67 proliferation indices, and elevated apoptotic markers. Pharmacokinetic sampling confirmed adequate systemic exposure, and the overall data package supported the compound's advancement into subsequent preclinical development stages. These findings demonstrate the utility of the HCC-1171 xenograft model as a robust platform for generating translational efficacy data in KRAS-mutant NSCLC.

Why Choose Alfa Cytology?
Alfa Cytology combines scientific rigor, operational efficiency, and client-centric flexibility to deliver preclinical xenograft studies that meet the highest standards of the pharmaceutical and biotechnology industries. Our HCC-1171 NSCLC xenograft service is designed to accelerate your drug discovery timeline while ensuring data integrity and regulatory readiness.
- Expertise in KRAS-mutant NSCLC models: Our scientific team has deep experience with KRAS G12C-driven tumor biology and understands the nuances of modeling this challenging molecular subtype.
- Validated, authenticated cell lines: All HCC-1171 stocks are STR-authenticated, mycoplasma-negative, and maintained under rigorous quality control to ensure batch-to-batch consistency.
- Flexible study design: We accommodate diverse dosing regimens, combination therapy protocols, biomarker-driven endpoints, and custom analytical requirements tailored to your compound's mechanism of action.
- Comprehensive endpoint portfolio: From standard tumor growth inhibition and histopathology to advanced molecular profiling, PK/PD integration, and biomarker validation, we provide a full spectrum of analytical capabilities.
- Regulatory-compliant operations: Our vivarium and laboratories operate under IACUC-approved protocols with adherence to GLP-like standards, ensuring data packages suitable for IND-enabling and regulatory submissions.
- Rapid study initiation and reporting: Typical HCC-1171 xenograft studies can be initiated within 2–4 weeks of contract execution, with comprehensive draft reports delivered promptly after study completion.
Contact Us
Ready to advance your KRAS-targeted therapeutic program with a validated HCC-1171 xenograft model? Contact us today to discuss your study requirements, receive a customized project proposal, and learn how Alfa Cytology can accelerate your preclinical oncology research. Our team of experienced scientists is standing by to design a study protocol that aligns with your discovery objectives and delivers actionable, high-quality data.
Reference
- Endres, Nicholas F., et al. "Discovery and Characterization of Divarasib (GDC-6036), a Potent Covalent Inhibitor of KRAS G12C." Journal of Medicinal Chemistry 69.5 (2026): 5147.
For research use only. Not intended for any clinical use.