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Disseminated Intravascular Coagulation Indication Strategy Report 2026: Evidence, Targets, Competition and Market Outlook

24 August 2026
12 min read

Disseminated Intravascular Coagulation Indication Strategy Report 2026: Evidence, Targets, Competition and Market Outlook

Published August 24, 2026 · Evidence accessed through Patsnap Life Sciences MCP servers.

This report evaluates one indication only: Disseminated Intravascular Coagulation. It connects disease context, epidemiology, target mechanism, clinical competition, transactions, unmet need and market attractiveness for portfolio and partnering decisions.

Executive assessment

Disseminated Intravascular Coagulation receives a directional strategic score of 61/100, combining unmet need (76/100), competitive intensity (87/100, where higher means more competition) and market attractiveness (79/100). The score is a transparent prioritization aid, not a revenue forecast, clinical recommendation or investment conclusion.

DimensionSignalStrategic interpretation
Evidence rationale3 epidemiology sourcesReconcile definitions, populations and geographies before sizing.
Unmet need76/100Anchor value in a measurable care-pathway failure.
Competition154 trials; 13 development drugsNormalize by phase, mechanism, status and patient segment.
Transactions0 direct recent matchesBroaden to target- and asset-level searches.

Disease background and strategic definition

A disorder characterized by procoagulant substances entering the general circulation causing a systemic thrombotic process. The activation of the clotting mechanism may arise from any of a number of disorders. A majority of the patients manifest skin lesions, sometimes leading to PURPURA FULMINANS.

The reproducible entity is Patsnap disease ID 2f16162be3dd4332b1659532540d92f7 with MeSH identifier D004211. Stable identifiers are important because rare and precision-defined diseases often carry historical labels, gene-defined subtypes and overlapping syndromic names.

A credible target product profile should define phenotype, age, severity, diagnostic confirmation, prior therapy, treatment setting, acceptable safety and endpoint. A broad label may inflate theoretical market size while weakening biological signal, trial interpretability and recruitment feasibility. The first population should be narrow enough for coherent biology but large enough for execution.

The care pathway should be mapped from symptom recognition through referral, diagnostic testing, treatment initiation and longitudinal monitoring. Diagnostic delay, limited specialist centers and fragmented testing can constrain both trial enrollment and commercial access. These bottlenecks deserve explicit operational assumptions.

Epidemiology and disease burden

Epidemiology evidence 1: 2026 Heart Disease and Stroke Statistics: A Report of US and Global Data From the American Heart Association

• In a Spanish registry covering 5.8 million people, CVI incidence was 3.37 per 1000 PY (95% CI, 3.31–3.43), increasing with age: 0.61 per 1000 PY in those <30 years of age and up to 10.95 per 1000 PY in those ≥80 years of age. Females pre­ sented with ≈2.5-fold more CVI than males (4.77 and 1.95 per 1000 PY, respectively). Venous stasis ulcer incidence was 0.23 per 1000 PY (95% CI, 0.21–0.24).138 • A Brazilian study with ≈870 000 public health care surgeries between 2009 and 2018 observed a rate of 4.52 CVI procedures per 10 000 PY at a cost of US $230 million.139 The in-hospital mortality rate was 0.0056%. • An online-based survey of 16 015 individuals from different nations showed a 22% prevalence of CVI, from 14% in French respondents to 37% in Russian respondents, and fewer than half of those with CVI sought medical attention.140 Among 19 104 work­ ers in Germany in a population-based study, the prevalence of CVI was similar (22.3%).141 Pulmonary Hypertension ICD-10 I27.0, I27.2. 2023, United States: Underlying cause mortal­ ity—9482. Any-mention mortality—33 614. 2022, United States: Hospital discharges—12 025 (principal diagnosis), 1 170 810 (all-listed diagnoses). Incidence • A 2023 analysis of a US claims database with ≈61 000 000 patients found a PH diagnosis in 5.2% of ≈855 000 of those who had chronic unex­ plained dyspnea. Furthermore, 0.1% had a diagno­ sis of PAH.142 • In the United States, PH accounted for 0.8% of all ED visits from 2011 to 2015, with a high hospi­ talization rate (87% of all patients with PH in the ED).143

Review the epidemiology source

Epidemiology evidence 2: Heart Disease and Stroke Statistics—2025 Update 2025 Heart Disease and Stroke Statistics: A Report of US and Global Data From the American Heart Association

• In a Spanish registry covering 5.8 million people, CVI incidence was 3.37 per 1000 PY (95% CI, 3.31–3.43), increasing with age: 0.61 per 1000 PY in those <30 years of age and up to 10.95 per 1000 PY in those ≥80 years of age. Females pre- sented ≈2.5-fold more CVI incidence than males (4.77 and 1.95 per 1000 PY, respectively). Venous stasis ulcer incidence was 0.23 per 1000 PY (95% CI, 0.21–0.24).133 • A Brazilian study with ≈870 000 public health care surgeries between 2009 and 2018 observed a rate of 4.52 CVI procedures per 10 000 PY at a cost of US $230 million.134 The in-hospital mortality rate was 0.0056%. • An online-based survey of 16 015 individuals from different nations showed a 22% prevalence of CVI, from 14% in French respondents to 37% in Russian respondents, and fewer than half of those with CVI sought medical attention.135 Among 19 104 work- ers in Germany in a population-based study, the prevalence of CVI was similar (22.3%).136 Pulmonary Hypertension ICD-10 I27.0, I27.2. 2022, United States: Underlying cause mortality—9635. Any-mention mortality—33 796. 2021, United States: Hospital discharges—12 855 (principal diagnosis), 1 131 494 (all-listed diagnoses). Incidence • A 2023 analysis of a US claims database with ≈61 000 000 patients found a PH diagnosis in 5.2% of ≈855 000 of those who had chronic unex- plained dyspnea. Furthermore, 0.1% had a diagno- sis of PAH.137 • In the United States, PH accounted for 0.8% of all ED visits from 2011 to 2015 with a high hos- pitalization rate (87% of all patients with PH in the ED).138 • PH incidence is somewhat highe

Review the epidemiology source

Epidemiology evidence 3: Heart Disease and Stroke Statistics—2023 Update Heart Disease and Stroke Statistics—2023 Update: A Report From the American Heart Association

• A 2019 systematic review including 103 632 049 live births globally showed the following per 1000 births in order of prevalence: VSD, 3.071; ASD, 1.441; patent ductus arteriosus, 1.004; pulmonary stenosis, 0.546; TOF, 0.356; TGA, 0.295; atrio- ventricular septal defects, 0.290; aortic coarcta- tion, 0.287; HLHS, 0.178; double-outlet RV, 0.106; and truncus arteriosus, 0.078 (among others reviewed).122 • CCDs were responsible for 261 247 deaths globally in 2017 (95% CI, 216 567–308 ), which is a 30% decline from 1990.8 The majority of these deaths (69%) were in infants <1 year of age (180 624 [95% CI, 146 825–214 178]). In large part, CCD mortality tracks socioeconomic development index, with the highest mortality in low and low-middle socioeconomic development index quintiles.8 • The GBD Study 2020 produces comprehensive and comparable estimates of disease burden for 370 reported causes and 88 risk factors for 204 countries and territories from 1990 to 2020 (data courtesy of the GBD Study 2020). In 2020: – The prevalence of CCDs was 14.78 million (95% UI, 13.35–16.47 million) cases. – There were 0.21 million (95% UI, 0.18–0.25 mil- lion) deaths estimated for CCDs worldwide. – Age-standardized mortality rates of CCDs were highest in Oceania, North Africa and the Middle East, and the Caribbean. They were lowest in high-income Asia Pacific, Western Europe, and Australasia (Chart 17-6). – The age-standardized prevalence of CCDs was highest in high-income Asia Pacific, Central Asia, and Western Europe (Chart 17-7). • In a 2019 systematic review including 103 632 049 live births

Review the epidemiology source

Translate epidemiology into an addressable-patient funnel: total affected population → diagnosed patients → clinically eligible segment → treated patients → realistically accessible patients. Incidence, point prevalence and lifetime prevalence cannot be substituted for one another, and incompatible case definitions should not be pooled.

For Disseminated Intravascular Coagulation, quantify diagnostic yield, age and severity distribution, referral-center concentration, treatment penetration, survival and progression. Use conservative, base and upside ranges. Each parameter should have a source, access date and explanation of how it maps to the intended clinical population.

Population concentration can materially change strategy. A small but well-defined group managed in a limited number of centers may be operationally attractive, while a larger but poorly diagnosed population may require extensive testing and education. Epidemiology must therefore connect to the real patient journey.

Unmet need and patient-value thesis

Unmet need should identify a specific failure: irreversible progression, incomplete control, treatment-limiting toxicity, weak durability, burdensome administration, delayed diagnosis or lack of options for a biomarker-defined subgroup. Disease severity alone does not prove that a new program can demonstrate clinically meaningful benefit.

A strong Disseminated Intravascular Coagulation thesis connects mechanism to a prospectively defined responder population and an endpoint understood by regulators, clinicians, patients and payers. It tests whether benefit can be measured within a feasible time horizon and whether natural-history variability can be controlled. Functional measures, patient-reported outcomes and resource use may complement biomarkers.

Development should proceed through evidence gates. Establish phenotype and natural history, demonstrate target engagement, observe a pharmacodynamic response, show an interpretable clinical signal and only then scale toward registrational development. Pre-agreed stop criteria protect capital and improve learning from negative results.

Target mechanism anchor: C5

Precursor of the C5a anaphylatoxin and complement C5b components of the complement pathways, which consist in a cascade of proteins that leads to phagocytosis and breakdown of pathogens and signaling that strengthens the adaptive immune system (PubMed:12878586, PubMed:18204047, PubMed:30643019, PubMed:6554279). Activated downstream of classical, alternative, lectin and GZMK complement pathways (PubMed:12878586, PubMed:18204047, PubMed:30643019, PubMed:39914456, PubMed:39814882, PubMed:6554279). Component of the membrane attack complex (MAC), a multiprotein complex activated by the complement cascade, which inserts into a target cell membrane and forms a pore, leading to target cell membrane rupture and cell lysis (PubMed:26841837, PubMed:27052168, PubMed:30552328, PubMed:30643019). Complement C5b is generated following cleavage by C5 convertase and initiates formation of the MAC complex: C5b binds sequentially C6, C7, C8 and multiple copies of the pore-forming subunit C9 (PubMed:30552328, PubMed:30643019). During MAC complex assembly, the C5b6 subcomplex, composed of complement C5b and C6, associates with the outer leaflet of target cell membrane, reducing the energy for membrane bending (PubMed:30552328, PubMed:32569291). Mediator of local inflammatory process released following cleavage by C5 convertase (PubMed:8182049, PubMed:9553099). Acts by binding to its receptor (C5AR1 or C5AR2), activating G protein-coupled receptor signaling and inducing a variety of responses including intracellular calcium release, contraction of smooth muscle, increased vascular permeability, and histamine release from mast cells and basophilic leukocytes (PubMed:36806352, PubMed:37852260, PubMed:37169960, PubMed:8182049, PubMed:9553099). C5a is also a potent chemokine which stimulates the locomotion of polymorphonuclear leukocytes and directs their migration toward sites of inflammation (PubMed:342601, PubMed:37852260, PubMed:37169960, PubMed:5765461, PubMed:8182049, PubMed:9553099).

The mechanism anchor is C5. It is a pathway hypothesis, not a claim that every Disseminated Intravascular Coagulation patient is target-dependent. Translational work should establish tissue expression, human genetic or biomarker support, pharmacologic tractability, target engagement, downstream modulation and a therapeutic window.

Critical experiments include orthogonal engagement assays, disease-relevant dose–response studies, biomarker qualification, compensatory-pathway analysis and explicit on-target and off-target safety testing. Human evidence should carry greater weight than model-only observations. Related clinical failures should be examined for exposure, population and endpoint lessons.

A go decision requires a complete chain: relevant target biology, achievable modulation at tolerated exposure, measurable pharmacodynamic change and a plausible bridge to clinical benefit. Missing links should trigger targeted experiments rather than narrative confidence.

Clinical development and competitive landscape

The focused query returned 154 registered studies. Recent sampled records include:

  • NCT07630415 — EARLY DIAGNOSIS OF SEPTIC DIC (EASY-DIC); Not yet recruiting; Not Applicable; sponsor Les Hopitaux Universitaires de Strasbourg; enrollment 492.
  • NCT07585942 — Fluorescent Leukocytes as a Marker of Early Sepsis/Severity (FLAMES); Not yet recruiting; Not Applicable; sponsor Les Hopitaux Universitaires de Strasbourg; enrollment 492.
  • NCT07576621 — Association Between Hypomagnesemia and Coagulopathy in Sepsis; Completed; Not Applicable; sponsor Ain Shams University; enrollment 150.

Trial count is not product count. Observational studies, natural-history cohorts and multiple studies from one asset can inflate activity. Normalize every record by phase, modality, mechanism, sponsor, recruitment status, geography, endpoint and exact disease subtype.

Competitive strategy should compare against the likely future standard at launch. Whitespace can arise from earlier treatment, genotype selection, improved durability, lower monitoring, safer chronic use, simpler administration or a rational combination. The differentiation claim must be visible in protocol design, not deferred to post hoc interpretation.

Recruitment risk is a core strategic variable. Site density, diagnostic testing, travel burden, competing protocols and screen-failure rates should inform country and center selection. Natural-history work can reduce uncertainty but cannot replace a controlled efficacy strategy when outcomes are variable.

Transaction activity and partnering attractiveness

No directly matched 2023–2026 transaction was returned. This may reflect limited partnering, broader transaction labels or asset-level indexing. Add target- and asset-based comparable searches before valuation.

Headline transaction value is rarely directly comparable. Separate upfront payments, milestones, royalties, options, bundled programs, platform rights and geographic scope. A useful comparable set matches indication, target, modality, stage and territory, then explains remaining differences.

Partner readiness requires a concise evidence room: disease segmentation, target-validation chain, competitive map, clinical plan, intellectual property, chemistry or manufacturability evidence and a transparent risk-adjusted value model. Outreach is most effective around a credible catalyst that retires material risk.

Low direct deal activity can represent whitespace, but it can also signal difficult science or economics. Broader therapeutic-area transactions should be used only when their relevance is explicit. Avoid assuming that all rare-disease transactions share the same valuation logic.

Market attractiveness and access

Market attractiveness depends on diagnosis infrastructure, specialist concentration, treatment duration, administration setting, payer controls, alternatives, monitoring burden and geographic reimbursement. Patient count is only one driver. Reliable identification and a meaningful effect may outweigh a small population; fragmented diagnosis can undermine a larger one.

The commercial model should use scenario ranges for diagnosed prevalence, eligible share, launch timing, competitive entries, net price, persistence and penetration. Every assumption should be traceable. Refresh the model when new epidemiology, trial or deal evidence becomes available.

Payer research should begin before pivotal design so comparator, endpoint and follow-up support reimbursement as well as approval. Evidence may need quality of life, caregiver burden, hospital use, diagnostic costs or productivity outcomes. The value proposition should connect clinical effect to stakeholder-relevant outcomes.

Risks and decision gates

  • Disease-definition risk: confirm a consistently diagnosed and recruitable population.
  • Biology risk: demonstrate C5 relevance in the selected phenotype.
  • Translation risk: connect engagement to a biomarker and meaningful endpoint.
  • Competition risk: refresh the landscape before every investment gate.
  • Operational risk: validate sites, testing and screen-failure assumptions.
  • Commercial risk: test pricing, access and adoption with clinicians and payers.
  • Data risk: treat zero-result searches as prompts for broader queries, not proof of absence.

Recommended gates are population confirmation, human mechanism validation, differentiated target product profile, early proof of mechanism and scale-up only after biological, clinical, operational and commercial signals converge.

Strategic recommendation

Disseminated Intravascular Coagulation merits continued milestone-based evaluation. The opportunity is strongest if a phenotype or biomarker identifies patients with coherent biology, if C5 modulation is measurable and if the proposed benefit remains differentiated against future care. Current evidence supports targeted diligence rather than unconditional investment.

The near-term business-development objective is a partner-ready thesis explaining the patient segment, mechanism, competitive whitespace, development path and value-inflection milestones. The scorecard offers a common comparison language while preserving evidence gaps and uncertainty.

Methodology and source note

This report was assembled on August 24, 2026 using Patsnap MCP tools in sequence: disease_fetch, epidemiology_search, target_fetch, clinical_trial_search and drug_deal_search. Results reflect records returned on the access date and may change as databases update.

Ranking weights are 40% unmet need, 25% inverse competition and 35% market attractiveness. Inputs include disease-profile depth, epidemiology coverage, registered-trial activity, development-drug counts and direct recent transaction signals. Rerun searches with synonyms, disease roll-ups, target names and asset filters before a transaction or portfolio commitment.

Conclusion

The key question for Disseminated Intravascular Coagulation is whether a biologically grounded therapy can deliver material patient benefit in an identifiable population and remain differentiated through launch. The evidence assembled here supplies a structured starting point, while the explicit gaps define the next diligence plan.

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