发布: 2026年07月20日第16卷第14期 DOI: 10.21769/BioProtoc.5770 浏览次数: 174
评审: David PaulYoshihiro AdachiAnonymous reviewer(s)
Abstract
Cell therapy holds great promise for cancer immunotherapy, but its clinical efficacy is severely hindered by poor post-transplant cell survival, low homing efficiency, and host immune clearance. To address these challenges, this study develops a novel light-controlled immunotherapy strategy that integrates a red/far-red light genetic switch with single-cell encapsulation engineering. The red/far-red light (660/730 nm) reversible regulatory system enables precise spatiotemporal control over the expression of therapeutic proteins in engineered cells (e.g., CAR-T or engineered HEK 293T cells), allowing on-demand activation of anti-tumor immune responses. On this basis, a mild enzyme-mediated single-cell encapsulation technique is further employed to rapidly form a protective hydrogel coating in situ on the cell surface, thereby enhancing the survival of transplanted cells under hostile in vivo microenvironments. This strategy combines precise gene expression regulation with physical protection, improving therapeutic outcomes without the need for genomic modification of the cells. It provides a new paradigm for developing safe, controllable, and efficient cancer immunotherapy.
Key features
• Using a 660/730 nm red/far-red light reversible switch, deep tissue penetration enables spatiotemporal precise control of tumor-targeted therapeutic proteins.
• Achieving rapid and gentle in situ gelation encapsulation of single-cell surfaces through HRP-pHLIP membrane anchoring and HA-dopamine enzymatic crosslinking.
• Targeted strategies to overcome post-transplant hypoxia, inflammatory stress, and pulmonary first-pass entrapment, physically enhancing early cell survival prior to reaching the target tissue.
• This experimental protocol requires at least three days.
Keywords: Single-cell encapsulation (单细胞封装)Graphical overview
Schematic illustration of encapsulating synthetic circuit–engineered cells. (A) Schematic representation of the optogenetic control system, illustrating the light-induced (660 nm) association and (730 nm) dissociation of PhyA and FHY1. The opto-genetically controlled gene regulation system employs two modular components: (1) a light-dependent transactivator (FHY1-VP64) created by fusing the PhyA interaction domain FHY1 with a tetrameric VP16 activation domain (VP64), driven by a constitutive promoter, and (2) a fusion light sensor (ΔPhyA-Gal4) formed by conjugating phytochrome PhyA with the Gal4 DNA-binding domain. Under 660 nm illumination in the presence of PCB chromophore, FHY1-VP64 binds ΔPhyA-Gal4, enabling the complex to activate transgene expression via the synthetic P5×UAS-PhCMVmin promoter. Far-red light (730 nm) triggers complex dissociation, terminating expression. (B) Schematic illustration of cell surface encapsulation engineering. HEK293T cells are collected and resuspended in phosphate-buffered saline (PBS, pH = 6.5) containing HRP-pHLIP. Then, the mixture is incubated at room temperature for 30 min. Subsequently, the mixture is centrifuged at 150× g for 5 min and washed three times with PBS to remove any unbound HRP-pHLIP. For encapsulation, labeled cells are mixed with a solution containing 2 mM of H2O2 and 2% (mass/volume) hyaluronic acid–dopamine (HA-DA) hydrogel solution and gently stirred for 30 min. After the stirring, cells are resuspended and washed three times with PBS (pH = 7.4) to remove any residual reagents.
Background
Cell therapy has been widely explored in regenerative medicine and cancer immunotherapy [1]. By administering living cells with defined therapeutic functions, such as stem cells or immune cells, this approach aims to repair damaged tissues, modulate immune responses, or eliminate malignant cells [2–5]. Among these modalities, chimeric antigen receptor T-cell (CAR-T) therapy has achieved remarkable clinical success in hematologic malignancies and has provided an effective option for patients with relapsed or refractory disease [6–7]. Likewise, mesenchymal stem cells (MSCs), owing to their immunomodulatory, tissue-reparative, and homing properties, have shown promise in clinical studies of autoimmune diseases, myocardial infarction, and graft-versus-host disease (GVHD), with more than one thousand registered trials worldwide [8–10].
Despite these advances, poor post-transplant survival and limited homing efficiency remain major barriers to clinical translation [11]. Following intravenous infusion or local delivery, transplanted cells are exposed to hypoxia, ischemia, and inflammatory stress, resulting in substantial cell loss before reaching the target tissue. For example, more than 90% of intravenously administered MSCs are trapped in the lungs within 24 h, and only a small fraction successfully home to target organs [12]. For CAR-T cells, the physical barriers of solid tumors, aberrant vasculature, and immunosuppressive tumor microenvironments likewise restrict infiltration and persistence [13–14]. In addition, allogeneic cell products, including off-the-shelf CAR-T cells and donor-derived MSCs, may be rapidly cleared by host immune responses, thereby limiting therapeutic efficacy [15].
To overcome these limitations, researchers have been actively exploring novel strategies for spatiotemporally precise regulation of therapeutic cell functions [16]. In recent years, optogenetic-based gene switch technologies, particularly the red/far-red light reversible regulatory system, have provided a new solution for cancer immunotherapy. Compared with blue light systems, red light exhibits deeper tissue penetration (up to several centimeters) and lower photocytotoxicity, making it more suitable for in vivo applications. A typical red light–controlled gene switch utilizes phytochromes (e.g., Arabidopsis PhyB) and their interacting factors (PIFs). Under red light irradiation (660 nm), phytochrome binds to PIF, thereby initiating downstream gene transcription; upon far-red light irradiation (730 nm), they dissociate, leading to rapid termination of gene expression [17]. This red/far-red light bidirectional switch features high spatiotemporal resolution, reversibility, and fast response kinetics. It has been successfully applied to regulate the expression of therapeutic cytokines (e.g., IL-2, IFN-γ) in CAR-T cells, the on-demand release of immune checkpoint inhibitors, and the membrane localization of chimeric antigen receptors. Compared with conventional constitutive expression or chemically inducible systems, the red light–controlled gene switch enables the stringent restriction of therapeutic protein expression to the tumor site and within a defined time window, thereby substantially reducing systemic immune-related toxicities. When integrated into the synthetic gene circuits of engineered cells, such optogenetic switches allow remote and reversible control over immune response intensity, opening a new avenue for precision cancer immunotherapy.
Meanwhile, cell surface engineering has also attracted much attention as an important strategy for improving the survival and function of transplanted cells [18–19]. As the interface between cells and their environment, the cell surface plays a central role in adhesion, signaling, immune recognition, and homing. Surface engineering enables the introduction of additional functions without altering the cell genome, thereby allowing precise control over cellular behavior [20]. Existing approaches include physical encapsulation with biocompatible coatings, chemical conjugation of functional molecules, and metabolic incorporation of non-native groups into membrane components [21–23]. Protective coatings based on hydrogels or polyelectrolyte membranes, as well as membrane-anchored immunomodulatory molecules, can reduce immune recognition and prolong the in vivo persistence of allogeneic cells. Such coatings may also act as local delivery platforms, creating a supportive pericellular microenvironment that enhances cell survival and functional stability [24–25].
In this protocol, we developed a cell surface encapsulation strategy based on the HRP-pH-low insertion peptide (pHLIP). HRP-pHLIP was inserted into the cell membrane, and in the presence of H2O2, horse radish peroxidase (HRP) catalyzed the crosslinking of hyaluronic acid–dopamine (HA-DA), enabling in situ encapsulation of individual cells. This approach integrates targeted membrane insertion with enzyme-mediated crosslinking to generate a mild, controllable protective coating, with the goal of improving cell survival under hostile post-transplantation conditions.
Materials and reagents
Biological materials
1. E. coli BL21 (DE3)
2. HEK 293T (human embryonic kidney 293T cells) (Servicebio STCC10301P-1)
Reagents
1. Hyaluronic acid (HA) (Sigma, CAS: 9067-32-7)
2. Dopamine (DA) (Sigma, CAS: 62-31-7)
3. 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide (EDC) (Sigma, CAS: 1892-57-5)
4. N-hydroxysuccinimide (NHS) (Sigma, CAS: 25389-94-0)
5. PBS (Gibco, CAS: 10010023)
6. Deuterium oxide (D2O) (Sigma, CAS: 7789-20-0)
7. Kanamycin (Sigma, CAS: 69-52-3)
8. MultiS One Step Cloning Kit (Vazyme, CAS: C113-01)
9. Imidazole (Sigma, CAS: 288-32-4)
10. NaCl (Sigma, CAS: 7647-14-5)
11. NaH2PO4·2H2O (Sigma, CAS: 7558-79-4)
12. Agar (Sigma, CAS: 9002-18-0)
13. H2O2 (Sigma, CAS: 7722-84-1)
14. High-glucose DMEM (Gibco, catalog number: C11995500BT)
15. FBS (Gibco, catalog number: A5256701)
16. Penicillin/streptomycin (Pricella Inc., catalog number: PB180120)
17. Lipo293TM (Beyotime, catalog number: C0521)
18. Yeast (Sigma, CAS: 8013-01-2)
19. Tryptone (Sigma, CAS: 91079-40-2)
20. Ni-NTA (Smart-Lifesciences, CAS: SA005025)
21. Hydrochloric acid (Sigma, CAS: 7647-01-0)
22. Sodium hydroxide (Sigma, CAS:1310-73-2)
Solutions
1. Luria-Bertani (LB) medium (see Recipes)
2. Solid LB medium (see Recipes)
3. Isopropyl β-D-thiogalactopyranoside (IPTG) (see Recipes)
4. Lysis buffer (see Recipes)
5. Wash buffer (see Recipes)
6. Elution buffer (see Recipes)
Recipes
1. LB medium
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| Tryptone | 1 g/100 mL | 1 g |
| Yeast extract | 0.5 g/100 mL | 0.5 g |
| NaCl | 1 g/100 mL | 1 g |
| H2O | n/a | 100 mL |
Prepare the LB medium by mixing 1 g of tryptone, 0.5 g of yeast extract, and 1 g of NaCl. Then, sterilize it under high pressure at 121 °C for 60 min.
2. Solid LB medium
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| Agar | 1.5 g/100 mL | 1.5 g |
| LB medium | n/a | 100 mL |
Add 1.5 g/100 mL of agar powder (agar) to the LB medium. Sterilize at 121 °C under high pressure for 60 min. When the temperature cools down to 50 °C, pour it into a sterile Petri dish and let it cool down for later use.
3. IPTG
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| IPTG | 1 M | 2.3 g |
| Double-distilled water (ddH2O) | n/a | 10 mL |
Weigh 2.3 g of IPTG, add it to 10 mL of ddH2O, and filter-sterilize the resulting solution through a 0.22 μm membrane filter.
4. Lysis buffer
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| NaH2PO4·2H2O | 50 mM | 7.8 g |
| NaCl | 300 mM | 17.54g |
| Imidazole | 10 mM | 0.68 g |
| ddH2O | n/a | 1 L |
Filter-sterilize.
5. Wash buffer
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| NaH2PO4·2H2O | 50 mM | 7.8 g |
| NaCl | 300 mM | 17.54 g |
| Imidazole | 20 mM | 1.36 g |
| ddH2O | n/a | 1 L |
Filter-sterilize.
6. Elution buffer
| Reagent | Final concentration | Quantity or volume |
|---|---|---|
| NaH2PO4·2H2O | 50 mM | 7.8 g |
| NaCl | 300 mM | 17.54 g |
| Imidazole | 250 mM | 17.0 g |
| ddH2O | n/a | 1 L |
Filter-sterilize.
Equipment
1. Refrigerated constant temperature air bath shaker (Jintan Xuri Experimental Instrument Factory, Hangzhou, China, model: JTYS-2000-L)
2. Ice maker (Xueke Electric Appliance Co., Ltd., Changshu, China, model: IMS-50)
3. Water purifier (Youpu Ultra-pure Technology Co., Ltd., Sichuan, China, model: UPH-I-30T)
4. Electrothermal constant temperature water bath (Yiheng Scientific Instrument Co., Ltd., Shanghai, China, model: HWS-12)
5. Ultrasonic homogenizer (Lichen Instrument Technology Co., Ltd., Shanghai, China, model: LJY96-IIN)
6. Centrifuge (Eppendorf, model: 5804R)
7. Point-scanning confocal (e.g., Zeiss, model: LSM800 or Leica, model: SP8)
8. Freeze-drying machine (Yaxing Instrument, model: LGJ-10N/B)
9. DC Power Supply (Zhaoxin, model: RXN-305D)
Procedure
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文章信息
稿件历史记录
提交日期: Apr 28, 2026
接收日期: Jun 4, 2026
在线发布日期: Jul 7, 2026
出版日期: Jul 20, 2026
版权信息
© 2026 The Author(s); This is an open access article under the CC BY license (https://creativecommons.org/licenses/by/4.0/).
如何引用
Readers should cite both the Bio-protocol article and the original research article where this protocol was used:
分类
癌症生物学 > 肿瘤免疫学 > 癌症治疗
免疫学 > 免疫疗法 > CAR-T
生物工程 > 合成生物学 > 基因修饰
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