1.Navigating the New Therapeutic Landscape: Innovative Strategies for Overcoming Resistance and Degeneration
Hyun-Jeong KO ; Chang Hoon LEE
Biomolecules & Therapeutics 2026;34(1):1-5
Recent technological advancements and environmental shifts have reshaped the therapeutic landscape of human diseases, driving a transition from merely understanding pathogenesis to developing precise and targeted therapeutic solutions. While the 2025 Special Issue focused on identifying emerging risk factors, the 2026 Special Issue (Vol. 34, No. 1) pivots toward concrete methodological innovations and advanced therapeutic interventions. This issue presents a curated collection of ten distinguished articles organized around three core themes. First, in the field of oncology and drug resistance, studies investigate transglutaminase 2 (TG2)-mediated autophagy and ferroptosis as strategies to overcome therapeutic resistance, alongside advances in CAR-T cell engineering and the integration of artificial intelligence (AI) with robotic surgery to enable precision medicine. Second, addressing degenerative and metabolic diseases, contributions elucidate the role of Wnt/β-catenin signaling in osteoporosis, recent therapeutic advances in knee osteoarthritis, mechanisms underlying drug-induced senescence, and the application of gene-editing technologies in iPSC-derived hepatic models. Finally, investigations into the neuro–immune axis highlight the dual roles of adaptive immunity in Alzheimer’s disease and evaluate novel pharmacological modulators targeting the kynurenine–aryl hydrocarbon receptor (AhR) axis. Collectively, this Special Issue delivers groundbreaking insights and innovative strategies aimed at restoring biological homeostasis and overcoming intractable diseases.
2.Gene Editing of Pluripotent Stem Cell-Derived Hepatic Cells for Liver Disease Modeling and Therapeutic Development
Donghyun LIM ; Hyung-Ryong KIM
Biomolecules & Therapeutics 2026;34(1):102-123
The growing demand for physiologically relevant human liver models has driven significant progress in generating hepatic cells and organoids derived from pluripotent stem cells. These regenerative cell sources serve as powerful platforms for elucidating the mechanisms underlying liver diseases and for evaluating drug responses under human-relevant conditions. Moreover, they hold tremendous promise as cell-based therapeutics for various hepatic disorders. The utility of these regenerative cell technologies is further expanded when combined with gene-editing techniques, which enable precise modeling of pathogenic variants and targeted correction of disease-associated mutations. Gene editing can also be leveraged to enhance the functionality and therapeutic potential of regenerative hepatocyte products. In this review, we summarize recent advances at the interface of gene editing and hepatic cell regeneration, emphasizing their applications in genetic disease modeling, therapeutic gene correction, drug testing, and cell-based therapies for liver disorders. We also provide an overview of major gene-editing tools and practical guidance for implementing them in pluripotent stem cells-based regenerative workflows, concluding with future perspectives on the integration of gene editing and regenerative hepatocyte technologies.
3.Preclinical Pharmacological and Toxicological Evaluation of SB5794, a Novel Aryl Hydrocarbon Receptor Modulator on the Kynurenine–AhR Axis
Daewon CHA ; Soo-Jung CHOI ; Hyunwoo PARK ; Dae Young LEE ; Min Sung JOO ; Wonhyung LEE ; Jungsang PARK ; Eunhye LEE ; Hakwon KIM
Biomolecules & Therapeutics 2026;34(1):146-153
Conventional aryl hydrocarbon receptor (AhR) antagonists, which play a critical role in modulating tumor immune evasion, have shown limited clinical translation due to poor solubility, restricted systemic exposure, and dose-limiting toxicities. To overcome these limitations, we developed SB5794, a phosphate prodrug of the potent AhR antagonist SB2617, designed to improve aqueous solubility and pharmacokinetic properties. SB5794 exhibited markedly enhanced solubility and achieved more than six-fold higher systemic exposure in mice compared with SB2617, while fully retaining its in vitro AhR antagonistic activity. In syngeneic tumor models, SB5794 significantly inhibited tumor growth, and its combination with anti–PD-1 therapy further enhanced antitumor efficacy. However, repeated-dose studies revealed dose-dependent histopathological changes in the gastrointestinal tract, liver, and immune organs. Collectively, these findings demonstrate that SB5794 possesses improved drug-like properties and strong immunomodulatory activity, supporting its potential as a next-generation AhR-targeted immunotherapeutic candidate.
4.Adaptive Immunity and Alzheimer’s Disease: Dual Roles in Neurodegeneration and Neuroprotection with Therapeutic Implications
Biomolecules & Therapeutics 2026;34(1):124-135
Alzheimer’s disease (AD) is a progressive neurodegenerative disorder defined by amyloid-β (Aβ) plaques, tau hyperphosphorylation, and neuroinflammation. Although earlier work emphasized brain-resident glia (microglia and astrocytes), recent studies highlight adaptive immune cells, particularly T and B lymphocytes, as modulators of AD pathology. This review synthesizes animal and human findings from 2022–2025 to provide updated insights into the multifaceted roles and therapeutic potential of adaptive immunity in AD. Infiltration of peripheral T and B cells into the brain parenchyma links peripheral immunity to central nervous system (CNS) pathology. Both infiltrating lymphocytes and resident glia show context-dependent dual effects, either exacerbating neurodegeneration or promoting neuroprotection. Therapeutic strategies under active investigation include modulation of CD4+ T cell differentiation, adoptive transfer of regulatory T cells, and next-generation active vaccines for AD. Overall, selective modulation of discrete immune subsets may enable adaptive-immunity-based treatments, a complex yet promising avenue for AD therapy.
5.Recent Advances in Therapeutic Approaches for Knee Osteoarthritis: a Narrative Review
Md. Solayman HOSSAIN ; Hyun Jae LEE ; Rajib HOSSAIN ; Chang Moo KIM ; Choong Jae LEE ; Sun-Chul HWANG
Biomolecules & Therapeutics 2026;34(1):80-101
Knee osteoarthritis (KOA) is a progressive and chronic musculoskeletal condition that continues to be the leading cause of disability worldwide. Conventional treatment approaches for the management of KOA largely focus on symptom alleviation rather than halting or reversing disease progression. However, recent advancements have highlighted the integrated interplay of mechanical stress, inflammation, cellular senescence, and chondrocyte dysfunction in the progression of KOA, in turn prompting new therapeutic strategies. Therefore, emerging interventions such as regenerative medicine, gene therapy, senolytic, platelet-rich plasma (PRP), disease-modifying osteoarthritis drugs (DMODs), and biologics have broadened the therapeutic options. Additionally, natural compounds demonstrated potential in KOA treatment with promising chondroprotective and anti-inflammatory effects.Moreover, digital technologies and clinical and molecular phenotyping enhanced early diagnosis, monitoring, and personalized management of the disease. Therefore, the current narrative review focuses on the molecular insights, clinical outcomes and prospects for the rapidly evolving landscape of current and emerging treatment approaches for the management of knee osteoarthritis (KOA).
6.Advancing Cancer Immunotherapy: Chimeric Antigen Receptor (CAR)-T Cell Engineering through Novel Screening Methods
Biomolecules & Therapeutics 2026;34(1):30-44
Cancer immunotherapy represents a paradigm-shifting achievement in oncology. Particularly, chimeric antigen receptor (CAR)-T cell therapy utilizing genetically engineered T cells has produced remarkable clinical responses in hematological malignancies.However, significant challenges still remain including limited efficacy in solid tumors and critical safety concerns. The functionality of CAR-T cells depends on their synthetic receptor, CAR, which redirects T cell specificity and enhances effector functions.Therefore, optimal CAR engineering is crucial for successful development of CAR-T cell therapy. In this review, we discuss the limitations of current CAR screening methods, which primarily assess antigen binding affinity in vitro and often fail to predict T cell function and in vivo therapeutic performance. Advanced cell-based screening platforms have been developed to overcome these limitations. We overview the principles of these CAR screening systems utilizing reporter cell lines. While most are based on the detection of antigen binding properties or CAR-T cell activation markers, we emphasize a FRET-based immunological synapse biosensor as a powerful system that directly assesses CAR activation upon antigen binding. This platform offers significant advantages in speed and scalability for predicting CAR-T cell functionality. We also discuss recent advances in CAR library screening directly in primary T cells, which provides more physiologically relevant data. Such advanced platforms are essential to accelerate the development of safe and effective CAR-T therapy for solid tumors, ultimately expanding the therapeutic potential of this transformative cancer treatment.
7.Targeting Ferroptosis to Overcome Drug Resistance in Cancer:Molecular Mechanisms and Therapeutic Prospects
Sang Hoon JOO ; Yong-Yeon CHO ; Jung-Hyun SHIM
Biomolecules & Therapeutics 2026;34(1):18-29
Drug resistance in cancer cells remains a major obstacle limiting the clinical efficacy of current anticancer therapies. The induction of ferroptosis, an iron-dependent, regulated form of cell death, may offer an alternative therapeutic strategy to overcome such resistance. The generation of reactive oxygen species (ROS) has been implicated in this process, and depending on the cellular context, ROS can be either detrimental or beneficial. Ferroptosis can be effectively triggered in drug-resistant cancer cells in which ROS levels are often highly elevated. Key signaling pathways, including receptor tyrosine kinase (RTK), mitogen-activated protein kinase (MAPK), and nuclear factor erythroid 2-related factor 2 (NRF2), are promising targets for modulating ROS homeostasis and sensitizing cancer cells to ferroptosis. In this review, we discuss the molecular mechanisms governing ferroptosis, the interplay between ROS and ferroptosis resistance, and emerging therapeutic approaches designed to enhance ferroptosis induction in drug-resistant cancer cells. Altogether, a combination of ferroptosis inducers and conventional treatments may improve the therapeutic efficacy and help overcome resistance mechanisms.
8.Targeting the Primordial Chaperone to Overcome Acquired Drug Resistance in Cancer: TG2-Mediated Autophagy
Biomolecules & Therapeutics 2026;34(1):6-17
The transglutaminase family is roughly 250 million years old. Horseshoe crabs have been described as a ‘living fossil’ and have remained virtually unchanged since first appearing around the Triassic period. The horseshoe crab, a living fossil, carries a primitive form of TG that helps it defend against infection and survive. Transglutaminase 2 (TG2, EC 2.3.2.13, gene name TGM2) is mainly known as a cross-linking enzyme in vertebrates. Although TG2 is not an oncogene, its high levels are linked to worse outcomes in many cancers. However, how TG2 cross-linking activity relates to its role in promoting cancer growth remains unclear. A recent discovery sheds light on this. In ovarian cancer cells, TG2 binds directly to GSK3β, leading to its removal by autophagosomes, which activates β-catenin. Stopping this interaction allows GSK3β levels to recover, thereby decreasing β-catenin activity. Even in the absence of cross-linking, cancer cells use TG2 as a chaperone to promote growth and support metastasis. This suggests intracellular calcium levels are too low for TG2 to perform cross-linking. It also indicates that anticancer treatments may increase TG2 levels in cancer cells, helping them recover by removing tumor suppressors. As a result, TG2 plays a role in developing drug resistance, acting as a primitive systemic defense mechanism linked with survival signals. I suggest that blocking TG2 binding, combined with inhibiting autophagy or alternative signaling pathways, is essential for effectively overcoming drug resistance, since it is rooted in TG2’s primordial role.
9.Gapmer Antisense Oligonucleotide Targeting E-Cadherin Rescues Abnormal Keratinization in X-Linked Ichthyosis Models
Ji Heung KWAK ; Tae-Uk KWON ; Yeo-Jung KWON ; Hyemin PARK ; Yoon-ji KANG ; Jeongeun SHIN ; Young-Jin CHUN
Biomolecules & Therapeutics 2026;34(1):213-224
X-linked ichthyosis (XLI) is an inherited disorder of keratinization resulting from a deficiency of steroid sulfatase (STS), for which no effective therapy is currently available. E-cadherin, a key upstream regulator of keratinocyte differentiation, has been found to be markedly overexpressed in STS-deficient HaCaT cells, suggesting its potential as a therapeutic target in XLI. To investigate the functional role of E-cadherin and explore its therapeutic potential, we introduced mutations into the N-terminal region of Ecadherin and examined the resulting effects on keratinocyte differentiation. In addition, a microRNA (miR-6766) and a rationally designed gapmer antisense oligonucleotide (gASO) targeting the same E-cadherin mRNA sequence were employed to modulate E-cadherin expression in HaCaT cells. Mutations within the N-terminal region of E-cadherin significantly reduced keratin 1 expression, underscoring the critical role of this domain in regulating keratinocyte differentiation. Treatment with miR-6766 led todownregulation of both early and terminal differentiation markers. Building on this, the gASO modified with 2′-O-methoxyethyl andphosphorothioate linkages exhibited enhanced potency and stability, resulting in stronger suppression of E-cadherin and keratin 1 expression compared with miR-6766 (maintained 37.7% greater inhibition of E-cadherin at 96 h and 35.7% greater inhibition of keratin 1 at 96 h). Furthermore, gASO treatment induced a concentration-dependent reduction in early (keratin 1 and keratin 10) and terminal (transglutaminase 1, involucrin, and loricrin) differentiation markers. These findings demonstrate that an E-cadherin– targeting gASO effectively suppresses abnormal keratinocyte differentiation and may serve as a promising therapeutic strategy for X-linked ichthyosis.
10.Targeting YAP-TEAD Interaction with Honokiol to Inhibit Melanoma Progression and Metastasis
Chaelin LEE ; Hien Thi Thu DO ; Xiang FEI ; Sanha LEE ; Soonsil HYUN ; Seung-Yong SEO ; Inmoo RHEE
Biomolecules & Therapeutics 2026;34(1):154-164
The Hippo-YAP/TEAD pathway plays a central role in melanoma progression by regulating tumor cell proliferation, survival, and migration. Using a NanoLuc Binary Technology (NanoBiT) protein-protein interaction assay, we screened honokiol-based small molecules and identified several analogues that disrupt the YAP-TEAD interaction. HK03 was the most effective analogue, leading to a pronounced reduction in Cyr61 levels and diminished Erk and Akt phosphorylation in B16-F10 melanoma cells. HK03 also blocked epithelial–mesenchymal transition (EMT) and impaired melanoma cell migration in wound-healing assays. In vivo, HK03 treatment markedly reduced metastatic burden in a B16-F10 lung metastasis model. These findings suggest that honokiol derivatives, particularly HK03, represent potential lead compounds for targeting the YAP-TEAD axis in melanoma therapy.

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