Related Experiment Video
Updated: Jul 8, 2025

Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Single protein encapsulated SN38 for tumor-targeting treatment
Changjun Yu1,2, Faqing Huang3, Kinsley Wang4
1Department of Chemistry, California Institute of Technology, Pasadena, CA, 91125, USA. cjyu@caltech.edu.
Background:
The alkaloid camptothecin analog SN38 is a potent antineoplastic agent, but cannot be used directly for clinical application due to its poor water solubility. Currently, the prodrug approach on SN38 has resulted in 3 FDA-approved cancer therapeutics, irinotecan, ONIVYDE, and Trodelvy. However, only 2-8% of irinotecan can be transformed enzymatically in vivo into the active metabolite SN38, which severely limits the drug's efficacy. While numerous drug delivery systems have been attempted to achieve effective SN38 delivery, none have produced drug products with antitumor efficacy better than irinotecan in clinical trials. Therefore, novel approaches are urgently needed for effectively delivering SN38 to cancer cells with better efficacy and lower toxicity.
Methods:
Based on the unique properties of human serum albumin (HSA), we have developed a novel single protein encapsulation (SPE) technology to formulate cancer therapeutics for improving their pharmacokinetics (PK) and antitumor efficacy and reducing their side effects. Previous application of SPE technology to doxorubicin (DOX) formulation has led to a promising drug candidate SPEDOX-6 (FDA IND #, 152154), which will undergo a human phase I clinical trial. Using the same SPE platform on SN38, we have now produced two SPESN38 complexes, SPESN38-5 and SPESN38-8. We conducted their pharmacological evaluations with respect to maximum tolerated dose, PK, and in vivo efficacy against colorectal cancer (CRC) and soft tissue sarcoma (STS) in mouse models.
Results:
The lyophilized SPESN38 complexes can dissolve in aqueous media to form clear and stable solutions. Maximum tolerated dose (MTD) of SPESN38-5 is 250 mg/kg by oral route (PO) and 55 mg/kg by intravenous route (IV) in CD-1 mice. SPESN38-8 has the MTD of 45 mg/kg by IV in the same mouse model. PK of SPESN38-5 by PO at 250 mg/kg gave mouse plasma AUC0-∞ of 0.05 and 4.5 nmol × h/mL for SN38 and SN38 glucuronidate (SN38G), respectively, with a surprisingly high molar ratio of SN38G:SN38 = 90:1. However, PK of SPESN38-5 by IV at 55 mg/kg yielded much higher mouse plasma AUC0-∞ of 19 and 28 nmol × h/mL for SN38 and SN38G, producing a much lower molar ratio of SN38G:SN38 = 1.5:1. Antitumor efficacy of SPESN38-5 and irinotecan (control) was evaluated against HCT-116 CRC xenograft tumors. The data indicates that SPESN38-5 by IV at 55 mg/kg is more effective in suppressing HCT-116 tumor growth with lower systemic toxicity compared to irinotecan at 50 mg/kg. Additionally, SPESN38-8 and DOX (control) by IV were evaluated in the SK-LMS-1 STS mouse model. The results show that SPESN38-8 at 33 mg/kg is highly effective for inhibiting SK-LMS-1 tumor growth with low toxicity, in contrast to DOX's insensitivity to SK-LMS-1 with high toxicity.
Conclusion:
SPESN38 complexes provide a water soluble SN38 formulation. SPESN38-5 and SPESN38-8 demonstrate better PK values, lower toxicity, and superior antitumor efficacy in mouse models, compared with irinotecan and DOX.
Insights
Novel single protein encapsulation (SPE) technology creates water-soluble SN38 formulations (SPESN38). These complexes show improved pharmacokinetics, reduced toxicity, and superior antitumor efficacy in mouse models compared to irinotecan and doxorubicin.
Area of Science:
- Oncology
- Pharmacology
- Biotechnology
Background:
- SN38, a potent antineoplastic agent, has poor water solubility limiting its clinical use.
- Current SN38 prodrugs like irinotecan have limited efficacy due to low conversion rates to active SN38.
- Novel drug delivery systems are needed to improve SN38 efficacy and reduce toxicity.
Purpose of the Study:
- To develop novel SN38 formulations using single protein encapsulation (SPE) technology.
- To evaluate the pharmacokinetic (PK) properties, maximum tolerated dose (MTD), and antitumor efficacy of SPESN38 complexes.
- To compare the efficacy and toxicity of SPESN38 complexes against existing treatments like irinotecan and doxorubicin.
Main Methods:
- Developed two SPESN38 complexes (SPESN38-5 and SPESN38-8) using SPE technology with human serum albumin.
- Determined MTD, PK profiles (AUC, SN38/SN38G ratios), and antitumor efficacy in mouse models for colorectal cancer (CRC) and soft tissue sarcoma (STS).
- Utilized HCT-116 CRC and SK-LMS-1 STS xenograft models for in vivo evaluations.
Main Results:
- SPESN38 complexes form stable aqueous solutions.
- SPESN38-5 demonstrated high MTD (250 mg/kg PO, 55 mg/kg IV) and favorable PK profiles.
- SPESN38-5 showed superior efficacy against HCT-116 tumors compared to irinotecan with lower toxicity; SPESN38-8 was highly effective against SK-LMS-1 tumors with low toxicity, unlike doxorubicin.
Conclusions:
- SPESN38 complexes offer a water-soluble formulation of SN38.
- SPESN38-5 and SPESN38-8 exhibit improved PK, reduced toxicity, and enhanced antitumor activity in preclinical models.
- SPE technology presents a promising platform for developing effective SN38-based cancer therapeutics.

