Cite

Boyd JH, Forbes J, Nakada T, Walley KR, Russell JA (2011) Fluid resuscitation in septic shock: A positive fluid balance and elevated central venous pressure are associated with increased mortality. Crit. Care Med. 39(2):259-65 https://doi.org/10.1097/CCM.0b013e3181feeb15BoydJHForbesJNakadaTWalleyKRRussellJA2011Fluid resuscitation in septic shock: A positive fluid balance and elevated central venous pressure are associated with increased mortalityCrit. Care Med39225965doi.org/10.1097/CCM.0b013e3181feeb15Open DOISearch in Google Scholar

Maisch B, Dristic A (2003) Practical aspects of the management of pericardial disease. Heart 89:1096-1103https://doi.org/10.1136/heart.89.9.1096MaischBDristicA2003Practical aspects of the management of pericardial diseaseHeart8910961103doi.org/10.1136/heart.89.9.1096Open DOISearch in Google Scholar

Jaeger JQ, Mehta RL (1999) Assessment of dry weight in hemodialysis: An overview. J. Am. Soc. Nephrol. 10:392-403JaegerJQMehtaRL1999Assessment of dry weight in hemodialysis: An overviewJ. Am. Soc. Nephrol1039240310.1681/ASN.V10239210215341Search in Google Scholar

Montgomery LD, Dietrich MS, Armer JM, Stewart BR, Ridner SH (2011) Segmental blood flow and hemodynamic state of lymphedematous and non-lymphedematous arms. Lymphat. Res. Biol. 9(1):31-42 https://doi.org/10.1089/lrb.2010.0012MontgomeryLDDietrichMSArmerJMStewartBRRidnerSH2011Segmental blood flow and hemodynamic state of lymphedematous and non-lymphedematous armsLymphat. Res. Biol913142doi.org/10.1089/lrb.2010.0012Open DOISearch in Google Scholar

Nanovic L (2005) Electrolytes and fluid management in hemodialysis and peritoneal dialysis. Nutr. Clin. Pract. 20(2):192-201 https://doi.org/10.1177/0115426505020002192NanovicL2005Electrolytes and fluid management in hemodialysis and peritoneal dialysisNutr. Clin. Pract202192201doi.org/10.1177/011542650502000219210.1177/011542650502000219216207656Search in Google Scholar

Ridner SH, Montgomery LD, Hepworth JT, Stewart BR, Armer JM (2007) Comparison of upper limb volume measurement techniques and arm symptoms between healthy volunteers and individuals with known lymphedema. Lymphology 40(1):35-46RidnerSHMontgomeryLDHepworthJTStewartBRArmerJM2007Comparison of upper limb volume measurement techniques and arm symptoms between healthy volunteers and individuals with known lymphedemaLymphology4013546Search in Google Scholar

Montgomery LD, Hanish HM, Marker RA (1989) An impedance device for study of multisegmental hemodynamic changes during orthostatic stress. Aviat. Space Environ Med. 60:116-22MontgomeryLDHanishHMMarkerRA1989An impedance device for study of multisegmental hemodynamic changes during orthostatic stressAviat. Space Environ Med6011622Search in Google Scholar

Stewart JM, Medow MS, Glover JL, Montgomery LD (2006) Persistent splanchnic hyperemia during upright tilt in postural tachycardia syndrome. Am. J. Physiol. Heart Circ. Physiol. 290:H665-H673 https://doi.org/10.1152/ajpheart.00784.2005StewartJMMedowMSGloverJLMontgomeryLD2006Persistent splanchnic hyperemia during upright tilt in postural tachycardia syndromeAm. J. Physiol. Heart Circ. Physiol290H665H673doi.org/10.1152/ajpheart.00784.2005Open DOISearch in Google Scholar

Nyboer J (1959) Electrical impedance plethysmography; the electrical resistive measure of the blood pulse volume, peripheral and central blood flow. Thomas, Springfield, ILNyboerJ1959Electrical impedance plethysmography; the electrical resistive measure of the blood pulse volume, peripheral and central blood flowThomas, Springfield, ILSearch in Google Scholar

Mohapatra SN, Arenson HM (1979) The measurement of peripheral blood flow by electrical impedance technique. J. Med. Eng. Tech. 3:132-137 https://doi.org/10.3109/03091907909162092MohapatraSNArensonHM1979The measurement of peripheral blood flow by electrical impedance techniqueJ. Med. Eng. Tech3132137doi.org/10.3109/0309190790916209210.3109/03091907909162092551215Search in Google Scholar

Anderson FA Jr, Penney BC, Patwardhan NA, Wheeler HB (1980) Impedance plethysmography: the orgin of electrical impedance changes measured in the human calf. Med. Biol. Eng. Comput. 18:234-240 https://doi.org/10.1007/BF02443300AndersonFA JrPenneyBCPatwardhanNAWheelerHB1980Impedance plethysmography: the orgin of electrical impedance changes measured in the human calfMed. Biol. Eng. Comput18234240doi.org/10.1007/BF0244330010.1007/BF024433007392690Search in Google Scholar

Yamamoto Y, Yamamoto T, Oberg PA (1992) Impedance plethysmography for blood flow measurements in human limbs: Part 2 Influence of limb cross-sectional area. Med. Biol. Eng. Comput. 30:518-524 https://doi.org/10.1007/bf02457831YamamotoYYamamotoTObergPA1992Impedance plethysmography for blood flow measurements in human limbs: Part 2 Influence of limb cross-sectional areaMed. Biol. Eng. Comput30518524doi.org/10.1007/bf0245783110.1007/BF024578311293443Search in Google Scholar

Jain AK, Lindsay RM (2008) Intra and extra cellular fluid shifts during the inter dialytic period in conventional and daily hemodialysis patients. ASAIO Journal 100-103 https://doi.org/10.1097/MAT.0b013e318162c404JainAKLindsayRM2008Intra and extra cellular fluid shifts during the inter dialytic period in conventional and daily hemodialysis patientsASAIO Journal 100-103doi.org/10.1097/MAT.0b013e318162c404Open DOISearch in Google Scholar

Sasser DC, Gerth WA, Wu YC (1993) Monitoring of segmental intra- and extracellular volume changes using electrical impedance spectroscopy. J. Appl. Physiol. 74:2180-2187SasserDCGerthWAWuYC1993Monitoring of segmental intra- and extracellular volume changes using electrical impedance spectroscopyJ. Appl. Physiol742180218710.1152/jappl.1993.74.5.21808335546Search in Google Scholar

Ackman JJ, Seitz MA (1984) Methods of complex impedance measurement in biologic tissue. CRC Crit. Rev. Biomed. Eng. 11:281-311AckmanJJSeitzMA1984Methods of complex impedance measurement in biologic tissueCRC Crit. Rev. Biomed. Eng11281311Search in Google Scholar

Kanai H, Katsuyuki S, Haeno M (1983) Electrical measurement of fluid distribution in human legs: Estimation of extra- and intracellular fluid volume. J. Microwave Power 18:233-43 https://doi.org/10.1080/16070658.1983.11689328KanaiHKatsuyukiSHaenoM1983Electrical measurement of fluid distribution in human legs: Estimation of extra- and intracellular fluid volumeJ. Microwave Power1823343doi.org/10.1080/16070658.1983.11689328Open DOISearch in Google Scholar

Jaffrin MY, Fenech M, DeFremont JF, Tolane M (2002) Continuous monitoring of plasma, interstitial, and intracellular fluid volumes in dialyzed patients by bioimpedance and hematocrit measurements. ASAIO Journal 48:326-333 https://doi.org/10.1097/00002480-200205000-00021JaffrinMYFenechMDeFremontJFTolaneM2002Continuous monitoring of plasma, interstitial, and intracellular fluid volumes in dialyzed patients by bioimpedance and hematocrit measurementsASAIO Journal48326333doi.org/10.1097/00002480-200205000-0002110.1097/00002480-200205000-0002112059010Search in Google Scholar

Jain AK, Lindsay RM (2008) Intra and extra cellular fluid shifts during the inter dialytic period in conventional and daily hemodialysis patients. ASAIO Journal 100-103 https://doi.org/10.1097/MAT.0b013e318162c404JainAKLindsayRM2008Intra and extra cellular fluid shifts during the inter dialytic period in conventional and daily hemodialysis patientsASAIO Journal 100-103doi.org/10.1097/MAT.0b013e318162c404Open DOISearch in Google Scholar

Jaffrin MY, Morel H (2009) Extracellular volume measurements using bioimpedance spectroscopy-Hanai method and wrist-ankle resistance at 50 kHz. Med. Biol. Eng. Comput. 47:77-84 https://doi.org/10.1007/s11517-008-0394-zJaffrinMYMorelH2009Extracellular volume measurements using bioimpedance spectroscopy-Hanai method and wrist-ankle resistance at 50 kHzMed. Biol. Eng. Comput477784doi.org/10.1007/s11517-008-0394-z10.1007/s11517-008-0394-z18797950Search in Google Scholar

Jindal GD (1986) Impedance plethysmography for screening vascular disorders. J. Postgrad. Med. 32:1-3JindalGD1986Impedance plethysmography for screening vascular disordersJ. Postgrad. Med3213Search in Google Scholar

Cole KS, Cole RH (1941) Dispersion and absorption in dielectrics. J. Chem. Phys. 9: 341-352 https://doi.org/10.1063/1.1750906ColeKSColeRH1941Dispersion and absorption in dielectricsJ. Chem. Phys9341352doi.org/10.1063/1.1750906Open DOISearch in Google Scholar

Sasser DC, Gerth WA, Wu YC. Monitoring of segmental intraand extracellular volume changes using electrical impedance spectroscopy. J. Appl. Physiol. 1993;74:2180-2187SasserDCGerthWAWuYCMonitoring of segmental intraand extracellular volume changes using electrical impedance spectroscopyJ. Appl. Physiol1993742180218710.1152/jappl.1993.74.5.2180Search in Google Scholar

Gerth WA, Montgomery LD, Wu YC (1990) A computer-based bioelectrical impedance spectroscopic system for noninvasive assessment of compartmental fluid redistribution. In; Proceedings of Third Annual IEEE Symposium on Computer- Based Medical Systems. IEEE Computer Society Press, Chapel Hill, NC: 446-453 https://doi.org/10.1109/CBMSYS.1990.109432GerthWAMontgomeryLDWuYC1990A computer-based bioelectrical impedance spectroscopic system for noninvasive assessment of compartmental fluid redistributionProceedings of Third Annual IEEE Symposium on Computer- Based Medical SystemsIEEE Computer Society PressChapel Hill, NC446453doi.org/10.1109/CBMSYS.1990.109432Open DOISearch in Google Scholar

Gerth WA, Watke CM (1993) Electrical impedance spectroscopic monitoring of body compartment volume changes. J. Clin. Eng. 18(3):253-260 https://doi.org/10.1097/00004669-199305000-00016GerthWAWatkeCM1993Electrical impedance spectroscopic monitoring of body compartment volume changesJ. Clin. Eng183253260doi.org/10.1097/00004669-199305000-0001610.1097/00004669-199305000-00016Search in Google Scholar

Fricke H (1924) A mathematical treatment of electric conductivity and capacity of disperse systems. I. The electric conductivity of a suspension of homogeneous spheroids. Phys. Rev. 24:575-587 https://doi.org/10.1103/physrev.24.575FrickeH1924A mathematical treatment of electric conductivity and capacity of disperse systems. I. The electric conductivity of a suspension of homogeneous spheroidsPhys. Rev24575587doi.org/10.1103/physrev.24.575Open DOISearch in Google Scholar

Fricke H (1925) A mathematical treatment of electric conductivity and capacity of disperse systems. II. The capacity of a suspension of conducting spheroids surrounded by a nonconducting membrane for a current of low frequency. Phys. Rev. 26:678-681 https://doi.org/10.1103/physrev.26.678FrickeH1925A mathematical treatment of electric conductivity and capacity of disperse systems. II. The capacity of a suspension of conducting spheroids surrounded by a nonconducting membrane for a current of low frequencyPhys. Rev26678681doi.org/10.1103/physrev.26.678Open DOISearch in Google Scholar

Fricke H (1925) The electric capacity of suspensions of red corpuscles of a dog. Phys. Rev. 26:682-687 https://doi.org/10.1103/PhysRev.26.682FrickeH1925The electric capacity of suspensions of red corpuscles of a dogPhys. Rev26682687doi.org/10.1103/PhysRev.26.682Open DOISearch in Google Scholar

Fricke H, Morse S (1925) The electric resistance and capacity of blood for frequencies between 800 and 4.5 million cycles. J. Gen. Physiol. 9:153-167 https://doi.org/10.1085/jgp.9.2.153FrickeHMorseS1925The electric resistance and capacity of blood for frequencies between 800 and 4.5 million cyclesJ. Gen. Physiol9153167doi.org/10.1085/jgp.9.2.153Open DOISearch in Google Scholar

Fricke H (1953) The electric permittivity of a dilute suspension of membrane-covered ellipsoids. J. Appl. Phys. 24:644-646 https://doi.org/10.1063/1.1721343FrickeH1953The electric permittivity of a dilute suspension of membrane-covered ellipsoidsJ. Appl. Phys24644646doi.org/10.1063/1.1721343Open DOISearch in Google Scholar

Gerth WA, Montgomery LD, Wu YC (1990) A computer-based bioelectrical impedance spectroscopic system for noninvasive assessment of compartmental fluid redistribution. In; Proceedings of Third Annual IEEE Symposium on Computer-Based Medical Systems. IEEE Computer Society Press, Chapel Hill, NC: 446-453 https://doi.org/10.1109/CBMSYS.1990.109432GerthWAMontgomeryLDWuYC1990A computer-based bioelectrical impedance spectroscopic system for noninvasive assessment of compartmental fluid redistributionProceedings of Third Annual IEEE Symposium on Computer-Based Medical SystemsIEEE Computer Society PressChapel Hill, NC446453doi.org/10.1109/CBMSYS.1990.109432Open DOISearch in Google Scholar

Montgomery LD, Gerth WA, Montgomery RW, Lew SQ, Klein MD, Stewart JM, Velasquez MT (2013) Monitoring intracellular, interstitial, and intravascular volume changes during fluidmanagement procedures. Med. Biol. Eng. Comput. 51:1167-1175 https://doi.org/10.1007/s11517-013-1064-3MontgomeryLDGerthWAMontgomeryRWLewSQKleinMDStewartJMVelasquezMT2013Monitoring intracellular, interstitial, and intravascular volume changes during fluidmanagement proceduresMed. Biol. Eng. Comput5111671175doi.org/10.1007/s11517-013-1064-310.1007/s11517-013-1064-3375713123549923Search in Google Scholar

Montgomery LD, Montgomery RW, Gerth WA, Lew SQ, Klein MD, Stewart JM, Medow M, Velasquez MT (2016) Bioimpedance monitoring of cellular hydration during hemodialysis therapy. Hemo. Int. In Press 10.1111/hdi.12511https://doi.org/10.1111/hdi.12511MontgomeryLDMontgomeryRWGerthWALewSQKleinMDStewartJMMedowMVelasquezMT2016Bioimpedance monitoring of cellular hydration during hemodialysis therapyHemo. IntIn Press10.1111/hdi.12511doi.org/10.1111/hdi.12511Open DOISearch in Google Scholar

Rodriguez HJ, Domenici R, Diroll A, Goykhman I. Assessment of dry weight changes in blood volume during hemodialysis using Crit-line. Kidney Int. 2005;68:854-861. https://doi.org/10.1111/j.1523-1755.2005.00467.xRodriguezHJDomeniciRDirollAGoykhmanIAssessment of dry weight changes in blood volume during hemodialysis using Crit-lineKidney Int200568854861doi.org/10.1111/j.1523-1755.2005.00467.xOpen DOISearch in Google Scholar

Sinha AD, Light RP, Agarwal R. Relative plasma volume monitoring during hemodialysis aids the assessment of dry weight. Hypertension 2010;55:305-311. https://doi.org/10.1161/HYPERTENSIONAHA.109.143974SinhaADLightRPAgarwalRRelative plasma volume monitoring during hemodialysis aids the assessment of dry weightHypertension201055305311doi.org/10.1161/HYPERTENSIONAHA.109.143974Open DOISearch in Google Scholar

Federal Drug Administration (2002) K011741 Premarket Approval Crit-Line IIITQA URR MonitorFederalDrug Administration2002K011741 Premarket Approval Crit-Line IIITQA URR MonitorSearch in Google Scholar

Federal Drug Administration (2010) K093834 Premarket Approval Crit-Line Anemia Management MonitorFederalDrug Administration2010K093834 Premarket Approval Crit-Line Anemia Management MonitorSearch in Google Scholar

Lew SQ, Velasquez MT, Montgomery LD, Gerth WA, Montgomery RW (20130 Monitoring intracellular (IC), interstitial (IS) and intravascular (IV) volume changes during dialysis (HD) in a chronic unit (CU) compared to acute unit (AU) setting. Presented at the Annual meeting of the American Society of Nephrology, At Atlanta, GA, USA.LewSQVelasquezMTMontgomeryLDGerthWAMontgomery RW (20130 Monitoring intracellular (IC), interstitial (IS) and intravascular (IV) volume changes during dialysis (HD) in a chronic unit (CU) compared to acute unit (AU) settingPresented at the Annual meeting of the American Society of NephrologyAt Atlanta, GA, USASearch in Google Scholar

Durbin J, Watson G S (1950) Testing for serial correlation in least squares regression, I. Biometrika 37, 409–428. https://doi.org/10.1093/biomet/37.3-4.409DurbinJWatsonG S1950Testing for serial correlation in least squares regression, IBiometrika37409428doi.org/10.1093/biomet/37.3-4.409Open DOISearch in Google Scholar

Bland J, Altman DG (1996) Statistical methods for assessing agreement between two methods of clinical measurement. Lancet 1:307-313BlandJAltmanDG1996Statistical methods for assessing agreement between two methods of clinical measurementLancet130731310.1016/j.ijnurstu.2009.10.001Search in Google Scholar