Review



minikros plus tangential flow filtration module  (Spectrum Labs)

 
  • Logo
  • About
  • News
  • Press Release
  • Team
  • Advisors
  • Partners
  • Contact
  • Bioz Stars
  • Bioz vStars
  • 86

    Structured Review

    Spectrum Labs minikros plus tangential flow filtration module
    Minikros Plus Tangential Flow Filtration Module, supplied by Spectrum Labs, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/filtration+flow+tangential/us12492232-439-0-6
    Average 86 stars, based on 1 article reviews
    minikros plus tangential flow filtration module - by Bioz Stars, 2026-10
    86/100 stars

    Images

    Related Articles

    Filtration:

    Article Title: Methods for producing proteins
    Article Snippet: .. MiniKros Plus tangential flow filtration module (Spectrum Laboratories, Inc.). ..

    Article Title: PET-CT Imaging of Polymeric Nanoparticle Tumor Accumulation in Patients.
    Article Snippet: .. [29] The generated azidefunctionalized CPC634 were purified and concentrated to 100 mg mL−1 polymer equivalent by means of Tangential Flow Filtration (TFF, 100 kDa mPES module, Spectrumlabs). ..

    Generated:

    Article Title: PET-CT Imaging of Polymeric Nanoparticle Tumor Accumulation in Patients.
    Article Snippet: .. [29] The generated azidefunctionalized CPC634 were purified and concentrated to 100 mg mL−1 polymer equivalent by means of Tangential Flow Filtration (TFF, 100 kDa mPES module, Spectrumlabs). ..

    Purification:

    Article Title: PET-CT Imaging of Polymeric Nanoparticle Tumor Accumulation in Patients.
    Article Snippet: .. [29] The generated azidefunctionalized CPC634 were purified and concentrated to 100 mg mL−1 polymer equivalent by means of Tangential Flow Filtration (TFF, 100 kDa mPES module, Spectrumlabs). ..

    Polymer:

    Article Title: PET-CT Imaging of Polymeric Nanoparticle Tumor Accumulation in Patients.
    Article Snippet: .. [29] The generated azidefunctionalized CPC634 were purified and concentrated to 100 mg mL−1 polymer equivalent by means of Tangential Flow Filtration (TFF, 100 kDa mPES module, Spectrumlabs). ..

    other:

    Article Title: Elevated production of the aromatic fragrance molecule, 2‐phenylethanol, using Metschnikowia pulcherrima through both de novo and ex novo conversion in batch and continuous modes
    Article Snippet: To conduct continuous mode, the input feed was fed directly into the bioreactor and the output was via a cross‐flow membrane (MiniKros Sampler Filter Module, Spectrum Labs Ltd) with pore size of 750 kD and ID 1.0 mm) to separate the biomass from the output stream allowing the aqueous phase, with 2PE, to pass through and the yeast‐rich retentate to be returned to the bioreactor.

    Article Title: Tumor vascular status controls oxygen delivery facilitated by infused polymerized hemoglobins with varying oxygen affinity
    Article Snippet: Once 250 mL of stage 1 permeate was transferred to stage 2, purification was initiated on a 100 kDa modified polyester sulfone (mPES) tangential flow filtration (TFF) module (Spectrum Labs, Rancho Dominguez, CA).

    Article Title: Sortagged anti-EGFR immunoliposomes exhibit increased cytotoxicity on target cells.
    Article Snippet: Purpose: Conventional chemotherapy is associated with therapy-limiting side effects, which might be alleviated by targeted chemotherapeutics such as immunoliposomes.. The targeting ligands of immunoliposomes are commonly attached by unspecific chemical conjugation, bearing risk of structural heterogeneity and therewith related biological consequences.. Chemoenzymatic methods may mitigate such risks through site-specific conjugation.

    Article Title: Elevated production of the aromatic fragrance molecule, 2‐phenylethanol, using Metschnikowia pulcherrima through both de novo and ex novo conversion in batch and continuous modes
    Article Snippet: A cross‐flow membrane (MiniKros Sampler Filter Module, Spectrum Labs Ltd) with a pore size of 750 kD and ID 1.0 mm was introduced to the overflow output to separate the biomass from the output stream allowing the aqueous phase, with 2PE, to pass through in the permeate and the yeast‐rich retentate was returned to the bioreactor to maintain the biomass.

    Article Title: Scalable production and complete biophysical characterization of poly(ethylene glycol) surface conjugated liposome encapsulated hemoglobin (PEG-LEH)
    Article Snippet: The liposome suspension was subjected to diafiltration on a 500 kDa hollow fiber tangential flow filtration (TFF) module (ID: M1-500S-360-01S) purchased from Spectrum Laboratories (Rancho Dominguez, CA).

    Pore Size:

    Article Title: Extracellular vesicles as dynamic crosslinkers for bioactive injectable hydrogels
    Article Snippet: In brief Extracellular vesicles (EVs) offer potent biological functionality but are challenging to integrate into materials.. Using scalable EVs from yogurt whey, the authors define key parameters for forming EV-crosslinked hydrogels—a framework that extends to mammalian and bacterial EVs.. These yogurt EV hydrogels promote angiogenesis and immune remodeling in vivo, highlighting agricultural EVs as a promising, accessible source for biofunctional materials with broad potential in tissue engineering and regenerative applications.

    Suspension:

    Article Title: Extracellular vesicles as dynamic crosslinkers for bioactive injectable hydrogels
    Article Snippet: In brief Extracellular vesicles (EVs) offer potent biological functionality but are challenging to integrate into materials.. Using scalable EVs from yogurt whey, the authors define key parameters for forming EV-crosslinked hydrogels—a framework that extends to mammalian and bacterial EVs.. These yogurt EV hydrogels promote angiogenesis and immune remodeling in vivo, highlighting agricultural EVs as a promising, accessible source for biofunctional materials with broad potential in tissue engineering and regenerative applications.



    Similar Products

    86
    Zaiput Flow Technologies flow chemistry modules
    Flow Chemistry Modules, supplied by Zaiput Flow Technologies, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/chemistry+flow+modules/pm42120392-278-57-71
    Average 86 stars, based on 1 article reviews
    flow chemistry modules - by Bioz Stars, 2026-10
    86/100 stars
      Buy from Supplier

    94
    Biolin Scientific flow module
    Flow Module, supplied by Biolin Scientific, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/QFM+401+Flow+module/pm41922476-249-13-25
    Average 94 stars, based on 1 article reviews
    flow module - by Bioz Stars, 2026-10
    94/100 stars
      Buy from Supplier

    86
    Transonic Systems Inc perivascular flow module
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Perivascular Flow Module, supplied by Transonic Systems Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/flow+perivascular+probe/bio_rxiv__64898__2026__02__05__703869-60-8-17
    Average 86 stars, based on 1 article reviews
    perivascular flow module - by Bioz Stars, 2026-10
    86/100 stars
      Buy from Supplier

    86
    Transonic Systems Inc transonic tubing flow module
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Transonic Tubing Flow Module, supplied by Transonic Systems Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/flow+meter+tubing/pmc12875343-59-26-30
    Average 86 stars, based on 1 article reviews
    transonic tubing flow module - by Bioz Stars, 2026-10
    86/100 stars
      Buy from Supplier

    93
    ADInstruments perivascular flow module
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Perivascular Flow Module, supplied by ADInstruments, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/Perivascular+Flowmeter+Module/pm41419687-59-31-41
    Average 93 stars, based on 1 article reviews
    perivascular flow module - by Bioz Stars, 2026-10
    93/100 stars
      Buy from Supplier

    86
    Spectrum Labs minikros plus tangential flow filtration module
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Minikros Plus Tangential Flow Filtration Module, supplied by Spectrum Labs, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/filtration+flow+tangential/us12492232-439-0-6
    Average 86 stars, based on 1 article reviews
    minikros plus tangential flow filtration module - by Bioz Stars, 2026-10
    86/100 stars
      Buy from Supplier

    94
    Biolin Scientific qfm401
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Qfm401, supplied by Biolin Scientific, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/QFM+401+Flow+module/pm41331924-168-38-44
    Average 94 stars, based on 1 article reviews
    qfm401 - by Bioz Stars, 2026-10
    94/100 stars
      Buy from Supplier

    94
    Biolin Scientific qfm 401 flow module cell
    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm <t>Perivascular</t> Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).
    Qfm 401 Flow Module Cell, supplied by Biolin Scientific, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/flow+module/QFM+401+Flow+module/pm41211808-299-7-18
    Average 94 stars, based on 1 article reviews
    qfm 401 flow module cell - by Bioz Stars, 2026-10
    94/100 stars
      Buy from Supplier

    Image Search Results


    (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm Perivascular Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).

    Journal: bioRxiv

    Article Title: A translational porcine model to assess the graded impact of hemorrhage and aortic occlusion on cardiovascular hemodynamics and renal perfusion

    doi: 10.64898/2026.02.05.703869

    Figure Lengend Snippet: (A) From superior to inferior and left to right: (1) Right External Jugular Vein – 7 Fr. cannula for central venous pressure (CVP) monitoring, (2) Left External Jugular vein – 7 Fr. triple lumen catheter for for fluid and drug administration, (3) Left Carotid Artery, 3-4mm Perivascular Transonic flow probe, (4) Left Subclavian Artery – 7Fr Cannula for proximal arterial pressure monitoring, (5) Right Brachial Artery, 5Fr. catheter for blood sampling, (6) Brachiocephalic arterial trunk, 6-8mm Perivascular Transonic flow probe, (7) Ascending Aorta (aortic root), 20-24mm Perivascular Transonic flow probe, (8) Left Ventricle, Transonic Pressure-Volume Catheter introduced via apical stick, (9) Proximal Descending Aorta, 12-14mm Perivascular Transonic Flow probe, (10) Left Renal Artery, 3-4 mm Perivascular Transonic Flow probe, (11) Distal Descending Aorta, 6-8 mm Perivascular Transonic flow probe, (12) Right Femoral Artery – 7 Fr. cannula reserved for distal pressure monitoring generally positioned infrarenal, (13) Left Femoral Artery - 9 Fr. cannula for introduction of the balloon catheter (balloon is inflated in the figure), (14) Left Femoral Vein – 9 Fr. MAC catheter for hemorrhage, transfusion and fluid resuscitation via automated Masterflex pump, and (15) Foley catheter for urine collection. Not depicted in the illustration are the endotracheal tube, splenectomy, or rectal temperature probe. We’d like to acknowledge Mr. Jerry Louis Shelton at Texas A&M University for his assistance in generating the pig illustration in panel 1A. (B) Experimental timeline depicting controlled 30-minute hemorrhage period, followed by 30 minutes of aortic occlusion, a 10-minute balloon wean and 3-hour critical care resuscitation phase. Animals were randomized to 10%, 20% or 30% hemorrhage (by volume), and then randomized to either no aortic occlusion, partial REBOA (p-REBOA) and full REBOA (f-REBOA) intervention groups. Autologous blood re-transfusion and balloon weaning occurred between 65–75 minutes, after which a closed-loop critical care algorithm was initiated to maintain target MAP>65 mmHg for three hours (until time 240 minutes).

    Article Snippet: To monitor the hemodynamic response, we used a Perivascular Flow Module with six ultrasonic flow probes (TS420, Transonic Systems Inc., Ithaca, NY).

    Techniques: Sampling