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result(s) for
"Fu, Yuanfeng"
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Research Progress in Nanofluid-Enhanced Oil Recovery Technology and Mechanism
2023
Nanofluid-enhanced oil recovery (EOR) technology is an innovative approach to enhancing oil production in oilfields. It entails the dispersion of nanoparticles within a fluid, strategically utilizing the distinctive properties of these nanoparticles (NPs) to engage with reservoir rocks or crude oil, resulting in a significant enhancement of the oil recovery rate. Despite the notable advantages of nanofluid EOR technology over conventional oil recovery methods such as binary and ternary flooding, practical implementations continue to grapple with a range of pressing challenges. These challenges encompass concerns regarding the economic viability, stability, and adaptability of nanomaterials, which pose significant barriers to the widespread adoption of nanofluid EOR technology in the oil field. To tackle these challenges, addressing the current issues may involve selecting simpler and more readily available materials coupled with straightforward material modification techniques. This approach aims to more effectively meet the requirements of large-scale on-site applications. Within this framework, this review systematically explores commonly employed nanofluids in recent years, including inorganic nanofluids, organic nanofluids, and composite nanofluids. It categorizes the research advancements in optimizing modification techniques and provides a comprehensive overview of the mechanisms that underpin nanofluid EOR technology and its practical applications in oilfields. This comprehensive review aims to offer valuable references and serve as a solid foundation for subsequent research endeavors.
Journal Article
Antidepressants as Autophagy Modulators for Cancer Therapy
2023
Cancer is a major global public health problem with high morbidity. Depression is known to be a high-frequency complication of cancer diseases that decreases patients’ life quality and increases the mortality rate. Therefore, antidepressants are often used as a complementary treatment during cancer therapy. During recent decades, various studies have shown that the combination of antidepressants and anticancer drugs increases treatment efficiency. In recent years, further emerging evidence has suggested that the modulation of autophagy serves as one of the primary anticancer mechanisms for antidepressants to suppress tumor growth. In this review, we introduce the anticancer potential of antidepressants, including tricyclic antidepressants (TCAs), tetracyclic antidepressants (TeCAs), selective serotonin reuptake inhibitors (SSRIs), and serotonin-norepinephrine reuptake inhibitors (SNRIs). In particular, we focus on their autophagy-modulating mechanisms for regulating autophagosome formation and lysosomal degradation. We also discuss the prospect of repurposing antidepressants as anticancer agents. It is promising to repurpose antidepressants for cancer therapy in the future.
Journal Article
Magnolol as a Potential Anticancer Agent: A Proposed Mechanistic Insight
2022
Cancer is a serious disease with high mortality and morbidity worldwide. Natural products have served as a major source for developing new anticancer drugs during recent decades. Magnolol, a representative natural phenolic lignan isolated from Magnolia officinali, has attracted considerable attention for its anticancer properties in recent years. Accumulating preclinical studies have demonstrated the tremendous therapeutic potential of magnolol via a wide range of pharmacological mechanisms against cancer. In this review, we summarized the latest advances in preclinical studies investigating anticancer properties of magnolol and described the important signaling pathways explaining its underlying mechanisms. Magnolol was capable of inhibiting cancer growth and metastasis against various cancer types. Magnolol exerted anticancer effects through inhibiting proliferation, inducing cell cycle arrest, provoking apoptosis, restraining migration and invasion, and suppressing angiogenesis. Multiple signaling pathways were also involved in the pharmacological actions of magnolol against cancer, such as PI3K/Akt/mTOR signaling, MAPK signaling and NF-κB signaling. Based on this existing evidence summarized in the review, we have conclusively confirmed magnolol had a multi-target anticancer effect against heterogeneous cancer disease. It is promising to develop magnolol as a drug candidate for cancer therapy in the future.
Journal Article
Preparation of Double-Networked Slow-Expanding Nanomicrospheres and Evaluation of Drive Modulation Performance
by
Zuo, Qiaolin
,
Liu, Qingwang
,
Fan, Zhenzhong
in
composite network
,
Crosslinked polymers
,
Design
2024
Aiming at the problem of excessive swelling of conventional microspheres for oilfield use, a novel amphiphilic polymerizable crosslinker (AE) was synthesized by quaternary ammonium modification of an unstable crosslinker (AE) using acrylamide, 2-acrylamido-2-methylpropanesulfonic acid as the monomers, N,N′-methylene bisacrylamide as the stabilizing crosslinker, ammonium peroxysulfate and sodium bisulfite as the initiator, and water as the solvent by using a reversed microemulsion method. Double-networked nanomicrospheres were prepared. The preparation conditions of the microspheres were optimized by the surface response method, focusing on the effects of the initiator addition and reaction temperature, and total crosslinker addition on the formation of nanomicrospheres. The samples were characterized by FTIR, TGA, laser particle sizer, and SEM to evaluate the retarded expansion performance and the modulation drive performance. The results showed that the optimal conditions for the preparation of microspheres were m(oil phase):m(water phase) = 3:2, stirring speed of 550 r/min, total crosslinking agent dosage of 0.6% (based on the total mass of monomers, hereinafter the same), initiator dosage of 0.30%, reaction temperature of 45 °C, and reaction time of 4 h. Compared with the conventional polymer microsphere PAM, PAE was slow-expanded for 45 d at 60 °C, and the expansion multiplier was about 16 times, with slow-expansion characteristics; the blocking rate of PAE reached 98.3%, the oil repulsion rate was 73.11%, and the increase in the recovery rate could be up to 11.23%. In this paper, a new type of nanomicrosphere material is investigated to realize the efficient implementation of oil field conditioning and driving.
Journal Article
Diastolic dysfunction and risks of heart failure and death in long-term adult cancer survivors
2024
Background
Cancer survivors face elevated risks of heart failure (HF) and death, with cardiac dysfunction being a significant concern. Current evaluations often emphasize systolic function while insufficiently addressing diastolic function. This study aims to investigate the prevalence of diastolic dysfunction and assess its prognostic implications in long-term cancer survivors.
Methods
We analyzed participants from the Atherosclerosis Risk in Communities (ARIC) Study with complete echocardiographic assessments and documented cancer histories. Diastolic function was classified by guideline criteria: normal (≤ 1 abnormal parameter), indeterminate (2 abnormal parameters), and dysfunction (≥ 3 abnormal parameters). The primary outcomes were incident HF and all-cause death. Diastolic dysfunction prevalence was compared between cancer survivors and non-cancer participants after propensity score matching. Cox regression, Kaplan–Meier, and restricted cubic spline (RCS) analyses were used to assess associated risks.
Results
A total of 5322 participants were included, with 18.4% (
N
= 979) being cancer survivors. The mean age of cancer survivors at echocardiography was 76.3 (5.10) years, with a median of 12.17 years since diagnosis. There were no significant differences in diastolic dysfunction prevalence (12.26% vs 10.73%,
P
= 0.29) after matching. Cox regression revealed a graded association between diastolic dysfunction and risks of HF and death. Fully adjusted hazard ratios were 2.59 (95% CI: 1.59–4.20,
P
< 0.001) for indeterminate diastolic function and 4.41 (95% CI: 2.40–8.12,
P
< 0.001) for diastolic dysfunction in HF; and 1.68 (95% CI: 1.26–2.25,
P
< 0.001) for indeterminate and 2.21 (95% CI: 1.51–3.22,
P
< 0.001) for diastolic dysfunction in all-cause death. These results were consistent across subgroup and sensitivity analyses and supported by Kaplan–Meier curves. RCS analyses demonstrated dose–response relationships between individual diastolic parameters and outcomes.
Conclusions
Diastolic dysfunction is prevalent among long-term cancer survivors and is stepwise associated with adverse outcomes. These findings underscore the essential need for ongoing monitoring of diastolic function in this population.
Journal Article
Multimodal lung cancer theranostics via manganese phosphate/quercetin particle
by
Tu, Qingchao
,
Han, Guang
,
Hou, Yichong
in
Advance in Nanomedicine for Cancer Therapy
,
Animals
,
Antitumor therapy
2025
The diagnosis and treatment of non-small cell lung cancer in clinical settings face serious challenges, particularly due to the lack of integration between the two processes, which limit real-time adjustments in treatment plans based on the patient’s condition and drive-up treatment costs. Here, we present a multifunctional pH-sensitive core-shell nanoparticle containing quercetin (QCT), termed AHA@MnP/QCT NPs, designed for the simultaneous diagnosis and treatment of non-small cell lung cancer. Mechanistic studies indicated that QCT and Mn
2+
exhibited excellent peroxidase-like (POD-like) activity, catalysing the conversion of endogenous hydrogen peroxide into highly toxic hydroxyl radicals through a Fenton-like reaction, depleting glutathione (GSH), promoting reactive oxygen species (ROS) generation in mitochondria and endoplasmic reticulum, and inducing ferroptosis. Additionally, Mn
2+
could activate the cGAS-STING signalling pathway and promote the maturation of dendritic cells and infiltration of activated T cells, thus inducing tumor immunogenic cell death (ICD). Furthermore, it exhibited effective T2-weighted MRI enhancement for tumor imaging, making them valuable for clinical diagnosis. In vitro and in vivo experiments demonstrated that AHA@MnP/QCT NPs enabled non-invasive imaging and tumor treatment, which presented a one-stone-for-two-birds strategy for combining tumor diagnosis and treatment, with broad potential for clinical application in non-small cell lung cancer therapy.
Graphical Abstract
Journal Article
αO-Conotoxin GeXIVA1,2 Suppresses In Vivo Tumor Growth of Triple-Negative Breast Cancer by Inhibiting AKT-mTOR, STAT3 and NF-κB Signaling Mediated Proliferation and Inducing Apoptosis
by
Luo, Sulan
,
Guo, Xijun
,
Qi, Xingzhu
in
acetylcholine
,
Acetylcholine receptors (nicotinic)
,
AKT protein
2024
Breast cancer is one of the leading causes of cancer mortality worldwide, and triple-negative breast cancer (TNBC) is the most problematic subtype. There is an urgent need to develop novel drug candidates for TNBC. Marine toxins are a valuable source for drug discovery. We previously identified αO-conotoxin GeXIVA[1,2] from Conus generalis, which is a selective antagonist of α9 nicotinic acetylcholine receptors (nAChRs). Recent studies indicated that α9 nAChR expression is positively correlated with breast cancer development; thus, α9 nAChR could serve as a therapeutic target for breast cancer. In this study, we aimed to investigate the in vivo antitumor effects of GeXIVA[1,2] on TNBC and to elucidate its underlying anticancer mechanism. Our data showed that GeXIVA[1,2] effectively suppressed 4T1 tumor growth in vivo at a very low dose of 0.1 nmol per mouse. Our results uncovered that the antitumor mechanism of GeXIVA[1,2] simultaneously induced apoptosis and blocked proliferation. Further investigations revealed that GeXIVA[1,2]-induced Caspase-3-dependent apoptosis was achieved through regulating Bax/Bcl-2 balance, and GeXIVA[1,2]-inhibited proliferation was mediated by the downregulation of the AKT-mTOR, STAT3 and NF-κB signaling pathways. Our study provides valuable arguments to demonstrate the potential of GeXIVA[1,2] as a novel marine-derived anticancer drug candidate for the treatment of TNBC.
Journal Article
Synergistic gambogic acid/Ga³⁺ remodels the immunosuppressive tumor microenvironment to enhance triple-negative breast cancer therapy
by
Tu, Qingchao
,
Fu, Yuanfeng
,
Xia, Fei
in
Animals
,
Antigen presentation
,
Antineoplastic Agents - pharmacology
2025
The immunosuppressive tumor microenvironment (TME) is a pivotal contributor to therapeutic resistance in triple-negative breast cancer (TNBC). Immunogenic cell death (ICD), which activates antitumor immunity through damage-associated molecular pattern (DAMP) release, represents a promising therapeutic strategy for TNBC. Although gambogic acid (GA) triggers ICD by inducing synergistic apoptosis/ferroptosis and DAMP secretion, its clinical translation is hindered by non-specific targeting, poor solubility, and systemic toxicity. To overcome these limitations, we engineered homologous tumor cell membrane-coated GA/Ga³⁺ nanoparticles (M@GAGa NPs) that operate through a triple-functionality: (1) Tumor-targeted delivery: Homologous membrane coating enables immune evasion and precise TNBC tissue accumulation. (2) TME-responsive synergy: Acidic TME-triggered release of GA and Ga³⁺ permits Ga³⁺-mediated disruption of tumor metabolism via ferric ion mimicry, synergistically enhancing GA-induced cytotoxicity. (3) Immunomodulation: GA-induced ICD releases immune signalling molecules such as calreticulin (CRT) and high mobility group protein B1 (HMGB1), while Ga³⁺ reprograms immunosuppressive cells, collectively activating dendritic cell (DC) antigen presentation and CD8⁺ T cell-mediated antitumor immunity. M@GAGa NPs remodel the immunosuppressive TNBC microenvironment through multimodal synergy, offering an innovative precision immunotherapy platform to overcome current therapeutic constraints.
Journal Article
Pithecellobium clypearia: Amelioration Effect on Imiquimod-Induced Psoriasis in Mice Based on a Tissue Metabonomic Analysis
2021
Pithecellobium clypearia Benth. (accepted name: Archidendron clypearia (Jack) I.C.Nielsen; Mimosaceae), a popular traditional Chinese medicine, has a significant anti-inflammatory effect. The crude water extract of the aerial part of P. clypearia has been clinically applied to treat upper respiratory tract infections, acute gastroenteritis, laryngitis, and pharyngitis. However, the therapeutic mechanism of ethanol fraction of water extract (ESW) of P. clypearia to treat psoriasis should be complemented. The aim of our research was to clarify the protective effects of ESW from P. clypearia against psoriasis-like skin inflammation induced by imiquimod (IMQ) in mice with efficacy indexes and target tissue (spleen and serum) metabolomics. The ingredient of ESW was analyzed by ultrahigh-performance liquid chromatography combined with tandem mass spectrometry (UHPLC-MS/MS) method. The imiquimod-induced psoriatic mouse model was employed to investigate the effect of ESW against psoriasis, where the treatment method was implemented for 6 days both topically (Gel at 5%) and orally (at 2.4 g/kg p.o.). Traditional pharmacodynamic indicators (phenotypic characteristics, psoriasis area and severity index (PASI) score, H&E staining, immunohistochemical staining, the thickness of epidermis, body weight change, and spleen index) were conducted to appraise the efficacy of ESW. Furthermore, a gas chromatography-mass spectrometer (GC-MS) coupled with multivariate analysis was integrated and applied to obtain serum and spleen metabolic profiles for clarifying metabolic regulatory mechanisms of ESW. The current study illustrated that ESW is composed mainly of gallic acid, ethyl gallate, quercitin, 7-O-galloyltricetiflavan, quercetin, and myricetin by UHPLC-MS/MS analysis. ESW could distinctly improve IMQ-induced psoriasis in mouse through reducing PASI score, alleviating tissue damage, restoring spleen index, and inhibiting proliferating cell nuclear antigen (PCNA) expression in psoriasis-like skin tissue. From the metabolomics study, 23 markers with significant changes are involved in eight main pathways in spleen and serum samples, including linoleic acid metabolism and glycine, serine, and threonine metabolism. The current study showed that ESW had obvious antipsoriasis effects on IMQ-induced psoriasis in mice, which might be attributed to regulating the dysfunction of differential biomarkers and related pathways. In summary, ESW of P. clypearia showed a favourable therapeutic effect on IMQ-induced psoriasis, and metabolomics provided insights into the mechanisms of ESW to the treatment of psoriasis.
Journal Article
Cancer Immunotherapy Based on the Bidirectional Reprogramming of the Tumor Microenvironment by a “Brakes Off/ Step on the Accelerator” Core‐Shell Manganese Phosphate/siPD‐L1 Modulator
2025
The insufficient infiltration and functional inhibition of CD8+ T cells due to tumor microenvironment (TME) are considered enormous obstacles to anti‐tumor immunotherapy. Herein, a pH‐responsive core‐shell manganese phosphate nanomodulator co‐loading siPD‐L1 and Mn2+ into nanoparticles coated with hyaluronic acid was prepared, which was aimed at the bidirectional reprogramming the tumor microenvironment: (1) “Brakes off,” restoring CD8+ T cells function by siPD‐L1 knockdowning PD‐L1 expression of tumor cells; (2) “Step on the accelerator,” promoting CD8+ T cells infiltration in tumors tissue based on the multidimensional immune effects of Mn2+ (immunogenic cell death induced the enhancing cGAS‐STING pathway, the proliferation and maturation of relative immune cells). Additionally, this strategy could induce macrophage polarization and inhibit the regulatory T cells in tumor site. This work provided a manganese phosphate nanomodulator to reprogram the immune TME for an enhanced comprehensive anti‐tumor effect of triple negative breast cancer, which offers a robust method for tumor immunotherapy in future clinical applications. To enhance the comprehensive treatment effect of triple‐negative breast cancer, a pH‐responsive core‐shell manganese phosphate nano‐regulator was prepared to reprogram the tumor microenvironment bi‐directionally. (1) “Brakes off”: Using siPD‐L1 to inhibit PD‐L1 expression to restore CD8+ T cell function. 2) “Step on the accelerator”: Based on Mn2+’s effect, promoting CD8+ T cell infiltration and maturation.
Journal Article