tumor
Overview
A tumor is an abnormal mass of tissue formed by uncontrolled cell growth and proliferation. Tumors may be benign or malignant, and their biological behavior depends on factors such as cellular origin, genetic alterations, local tissue interactions, and the surrounding tumor microenvironment. In medical and biological research, the term is also used more broadly to describe the lesion or mass itself, including contexts in which immune, stromal, metabolic, and vascular components shape disease progression and treatment response.
Tumors are central to cancer biology because they reflect altered signaling networks that regulate survival, proliferation, immune evasion, invasion, and metastasis. Modern tumor research often focuses on interactions among tumor cells, macrophage, dendritic cell, cytotoxic T cell, and T-lymphocytes, as well as pathways influenced by transforming growth factor, reactive oxygen species, and the mitochondrion. These features are increasingly important for designing immunotherapy, chemotherapy, photochemotherapy, and other targeted or localized treatment strategies.
Recent Publications Summary
Recent studies have examined tumors as therapeutic targets, disease specimens, or anatomical masses across several biomedical settings. In cutaneous basal cell carcinoma and squamous cell carcinoma, one study assessed c-Kit immunohistochemical expression and explicitly aimed to correlate c-Kit expression with the pathological data of the tumor and clinical data of the patients 42562854Aug. This reflects the use of tumor tissue characterization to relate molecular marker expression to clinicopathological features.
Spatial and multiomic profiling approaches have also been used to study tumor biology in lymphoma. Using same-slide spatial multiomics integration, investigators compared Epstein-Barr virus (EBV)-positive and EBV-negative diffuse large B-cell lymphoma tumors and identified tumor-virus-linked spatial reorganization of the tumor microenvironment at single-cell resolution 41874448Mar. The study reported coordinated tumor-macrophage-CD4 T-cell remodeling, enrichment of immunosuppressive C1Q macrophage populations, CD4 T-cell dysfunction, and a candidate IL27-STAT3 signaling axis, illustrating how tumors can be shaped by immune context and viral status 41874448Mar.
Tumor-targeted therapeutic and imaging platforms were a major theme in the recent literature. A dual-quenched, redox-responsive gold nanoplatform was designed for tumor-specific multimodal theranostics, with the photothermal effect of gold nanorods enabling photothermal therapy and real-time photoacoustic imaging of the tumor 42358224Jun. Similarly, a carrier-free cyanine-PROTAC self-assembly system was developed for tumor-specific protein degradation; the assemblies were designed to disassemble in response to ultrasound or X-ray irradiation, allowing spatiotemporally controlled PROTAC release within tumors 42526644Jul. Another platform used an acid/NIR dual-responsive nanoplatform with AND logic-gated nitric oxide release for companion theranostics of tumors, where reciprocal reinforcement between nitric oxide signaling and mild hyperthermia was reported to produce a strong synergistic effect that effectively eradicated tumors 42374965Jun. These studies collectively emphasize tumor-localized delivery, stimulus responsiveness, and combination of photothermal, redox, and signaling-based strategies.
Tumor-targeted immunotherapy approaches were also highlighted. Engineered Bifidobacterium longum was used as a probiotic obligate anaerobe that selectively colonizes the tumor microenvironment to continuously secrete Super-mutant IL-2, an engineered IL-2 variant that preferentially activates effector T cells over regulatory T cells, thereby delivering the cytokine selectively to the tumor in pancreatic cancer models 42490449Jul. In another study, a TIGIT-targeted IL-12 fusion protein was reported to selectively localize to the tumor site while concurrently targeting intratumoral natural killer cells and CD8+ T cells in vivo, supporting a dual localization and immune-activation strategy for tumor immunotherapy 42302794Jun. A photoresponsive carbon dot hydrogel was also used for miR-155-driven immune remodeling in breast cancer; in a tumor-induced mouse model, photoactivation was reported to damage cancer cells, release damage-associated molecular patterns, and control tumor growth 42295119Jun.
Several studies focused on biodistribution, direct tumor delivery, and tumor accumulation. Pure fungal melanin was prepared, formulated, radiolabeled, and evaluated in vivo as a probe for photothermal therapy of cancer; after direct injection into tumors in mice, the material showed strong tumor accumulation and retention 41691773Feb. These findings are consistent with the general importance of tumor localization in improving theranostic performance and limiting off-target effects.
Not all publications concerned cancer alone; one case report described dialysis-related amyloidosis presenting as a large tumor extending from the gingiva to the palate in a hemodialysis patient 42118463May. This illustrates that the term tumor can also describe a mass lesion in non-neoplastic disease, underscoring the need for pathological evaluation to distinguish neoplastic from non-neoplastic growths.
Overall, the recent literature portrays tumors as biologically complex lesions that can be characterized molecularly, mapped spatially, and targeted through immunotherapy, photothermal approaches, redox-responsive systems, cytokine fusion proteins, and engineered microbes. Across these studies, the common themes are tumor specificity, interaction with the immune microenvironment, and the use of mouse models and patient-derived pathological data to refine therapeutic design 42562854Aug41874448Mar42358224Jun42526644Jul42490449Jul42302794Jun42295119Jun41691773Feb42374965Jun.
What Changes, What Holds
1. Marker correlation sharpens tumor tissue characterization rather than redefining tumor biology
REINFORCES c-Kit expression in cutaneous carcinoma tissue extends the established use of tumors as clinicopathologic specimens: molecular marker assessment can be tied to pathology and patient data, but nothing here displaces the baseline view of tumors as abnormal proliferative masses shaped by genetics and microenvironment. The main contribution is practical refinement of how tumor tissue is read, not a new biological role 42562854Aug.
2. Viral status can reorganize the tumor microenvironment at single-cell resolution
NEW DIRECTION EBV-linked spatial remodeling adds a more specific layer to the baseline account of tumor microenvironmental control, showing that tumors are not only shaped by immune and stromal context but can be reorganized in a virus-dependent spatial pattern with macrophage and CD4 T-cell dysfunction. It does not overturn the Overview; it extends it by identifying viral status as an additional determinant of tumor ecology 41874448Mar.
3. Tumor-localized theranostics remain an optimization strategy, not a new tumor function
REINFORCES redox-responsive imaging and stimulus-gated payload release strengthen the established theme that tumors are useful targets for localized treatment and imaging because delivery can be concentrated within the lesion. Gold nanorods, carrier-free assemblies, and nitric-oxide logic gating add engineering variants, but the claim stays within the baseline framework of tumor-targeted therapy, photothermal approaches, and responsiveness to the tumor milieu 42358224Jun42526644Jul.
4. Immune-activating agents can be steered into tumors more selectively
REINFORCES engineered bacteria, IL-12 fusion targeting, and photoresponsive hydrogel delivery all extend the Overview’s emphasis on immunotherapy by improving localization and intratumoral immune activation. The significance is not that tumors now mean something different, but that the tumor microenvironment can be exploited to bias cytokine and immune effector delivery toward effector T cells, NK cells, and damage-associated immune remodeling 42490449Jul42302794Jun.
5. Direct intratumoral deposition can improve retention and local exposure
REINFORCES radiolabeled fungal melanin after injection into tumors supports the long-standing idea that local tumor delivery can increase accumulation and retention for photothermal applications. The work does not add a new tumor role or contradict the baseline; it simply reinforces the practical importance of concentrating agents within the lesion rather than relying on systemic distribution 41691773Feb.
6. Non-neoplastic masses can still be called tumors, so pathology remains decisive
NEW DIRECTION dialysis-related amyloidosis presenting as a large oral mass shows that the term tumor may describe a mass lesion outside neoplasia, which is a role the Overview already allows only implicitly by broadening the term beyond cancer biology. The consequence is diagnostic rather than conceptual: a tumor-like mass is not synonymous with cancer, and tissue evaluation is needed to distinguish neoplastic from non-neoplastic growth 42118463May.
7. The recent literature mainly refines tumor targeting, mapping, and immune modulation
REINFORCES the combined body of work consolidates rather than overturns the baseline: tumors are being characterized molecularly, mapped spatially, and attacked through immunotherapy, photothermal methods, redox-responsive systems, cytokine fusion proteins, and engineered microbes. What changes is emphasis, not definition; the new studies strengthen the case that tumor specificity and microenvironmental interaction are central design principles for therapy 42562854Aug41874448Mar42358224Jun42526644Jul42490449Jul42302794Jun42295119Jun41691773Feb42374965Jun.
Overview update candidates: viral-status-dependent tumor microenvironment remodeling; non-neoplastic mass lesions described as tumors; improved tumor-localized delivery and immune-targeted theranostic strategies.
tumor
Background Contexts
In the literature, the biological baseline, pathological conditions, or disease models commonly surrounding tumor are described as follows:
- tumor microenvironment (Biological Process) — 7 papers: PMIDs 42490449, 42467076, 42458928, 42425951, etc.
- colorectal cancer (Disease) — 4 papers: PMIDs 42503520, 42421534, 42309065, 41998161
- Non-small cell lung cancer (Disease) — 4 papers: PMIDs 42525247, 42476285, 42224490, 42212402
- breast cancer (Disease) — 3 papers: PMIDs 42503544, 42486779, 41925564
- Cancer (Disease) — 3 papers: PMIDs 42467819, 42467076, 42358224
- checkpoint inhibitor (Therapy) — 3 papers: PMIDs 42527032, 42008113, 41998161
- drug resistance (Disease) — 3 papers: PMIDs 42471772, 41915967, 41108144
- photochemotherapy (Biological Process) — 3 papers: PMIDs 42421534, 42358224, 41887152
- prostate cancer (Disease) — 3 papers: PMIDs 42529845, 42447187, 42400871
- adenocarcinoma of the lung (Disease) — 2 papers: PMIDs 42525247, 42287786
- bladder cancer (Disease) — 2 papers: PMIDs 42500328, 41915967
- hypoxia (Biological Process) — 2 papers: PMIDs 42454487, 41887152
Methodologies & Technologies Used
Researchers utilize the following experimental methods, imaging platforms, computational models, or biological reagents to study tumor:
- mouse (Organism) — 9 papers: PMIDs 42551427, 42490449, 42467819, 42402082, etc.
- DJI Phantom (Other) — 3 papers: PMIDs 42503533, 42477970, 42107614
- flow cytometry (Technology) — 3 papers: PMIDs 42391610, 42335955, 41108144
- immunohistochemistry (Technology) — 3 papers: PMIDs 42570146, 42562854, 42525247
- single-photon emission computed tomography (Technology) — 3 papers: PMIDs 42529845, 42468568, 42447187
- xenograft (Organism) — 3 papers: PMIDs 42402082, 42380731, 42212402
- A-549 (Cell Line) — 2 papers: PMIDs 42225068, 42212402
- Bladder Cancer Cell Line (Cell Line) — 2 papers: PMIDs 42500328, 41915967
- cell line (Cell Line) — 2 papers: PMIDs 42018154, 41108144
- chemotherapy (Therapy) — 2 papers: PMIDs 42489415, 41932295
- computed tomography (Other) — 2 papers: PMIDs 42489415, 42468568
- gene-modified mouse lines (Cell Line) — 2 papers: PMIDs 42467342, 42458928
Molecular Interventions & Targets
The primary molecular pathways, regulatory genes, enzymes, or therapeutic agents actively targeted and manipulated in relation to tumor include:
- Glutamate carboxypeptidase II (GCPII) (Protein) — 3 papers: PMIDs 42529845, 42447187, 42400871
- chemodynamic therapy (Therapy) — 2 papers: PMIDs 42358224, 41855820
- doxorubicin (Therapy) — 2 papers: PMIDs 42503863, 41855820
- messenger RNA (Chemical) — 2 papers: PMIDs 42458928, 42132777
- nivolumab (Therapy) — 2 papers: PMIDs 42527032, 42224490
- trastuzumab deruxtecan (Chemical) — 2 papers: PMIDs 42287786, 41925564
- γ-aminobutyric acid (Chemical) — 2 papers: PMIDs 42503520, 42425073
- 2-(4-((2,3-di(stearoyloxy)propyl)carbamoyl)pyridin-1-ium-1-yl)acetate (Chemical) — 1 paper: PMIDs 41684125
- 25-Gene Signature (Gene) — 1 paper: PMIDs 42500328
- 4-borono-2-[18F]fluorophenylalanine (Chemical) — 1 paper: PMIDs 42429632
- actinium-225 (Chemical) — 1 paper: PMIDs 42400871
- activated dendritic cell (Cellular Component) — 1 paper: PMIDs 42551427
Observed Outcomes & Phenotypes
The phenotypic changes, physiological endpoints, or clinical metrics observed and measured in connection with tumor include:
- transforming growth factor (Clinical Metric) — 6 papers: PMIDs 42562816, 42503520, 42490449, 42486779, etc.
- antitumor efficacy (Clinical Metric) — 4 papers: PMIDs 42526644, 42486779, 42001543, 41887152
- dendritic cell (Cellular Component) — 4 papers: PMIDs 42531732, 42476285, 42295119, 41932295
- IC50 (Clinical Metric) — 4 papers: PMIDs 42467342, 42402082, 42380731, 42001543
- Proliferation (Biological Process) — 4 papers: PMIDs 42525247, 42525155, 42500328, 42018154
- T-lymphocytes (Cellular Component) — 4 papers: PMIDs 42476285, 42454487, 42241249, 41837748
- Age (Other) — 3 papers: PMIDs 42562854, 42500328, 42489736
- cancer cell (Cellular Component) — 3 papers: PMIDs 42503863, 42489415, 42380731
- chemotherapy (Therapy) — 3 papers: PMIDs 42490449, 42489736, 42467076
- macrophage (Cellular Component) — 3 papers: PMIDs 42454487, 41915967, 41874448
- metastasis (Disease) — 3 papers: PMIDs 42489415, 42302794, 42241249
- progression-free survival (Clinical Metric) — 3 papers: PMIDs 42570146, 42525155, 42276053
General Takeaways & Clinical Potentials
The high-level concepts, clinical translations, and overarching conclusions proposed in the research surrounding tumor are summarized below:
- precision oncology (Therapy) — 3 papers: PMIDs 42525247, 42500328, 42276053
- immunotherapy (Therapy) — 2 papers: PMIDs 42527032, 42302794
- nivolumab (Therapy) — 2 papers: PMIDs 42527032, 42224490
- therapeutic potential (Other) — 2 papers: PMIDs 42490449, 42476285
- therapeutic target (Other) — 2 papers: PMIDs 42500328, 41108144
- tumor therapy (Therapy) — 2 papers: PMIDs 42300261, 42241249
- tumor-associated macrophage (Cellular Component) — 2 papers: PMIDs 42391610, 41955504
- 4-borono-2-[18F]fluorophenylalanine (Chemical) — 1 paper: PMIDs 42429632
- actin (Protein) — 1 paper: PMIDs 42570146
- activated dendritic cell (Cellular Component) — 1 paper: PMIDs 42551427
- Active Smoking (Biological Process) — 1 paper: PMIDs 42489736
- Adducin 3 (gamma) (Protein) — 1 paper: PMIDs 42570146