Physiological Changes in Pregnancy and Their Anaesthetic Implications

Physiological Changes in Pregnancy and Their Anaesthetic Implications

 

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  • Physiological adaptation in pregnancy occurs due to three broad mechanisms (Miller’s Anesthesia, 10th ed.):
  • (1) Hormonal changes – oestrogen, progesterone, relaxin, prostaglandins, human placental lactogen, renin–angiotensin–aldosterone activation.
  • (2) Mechanical effects of the enlarging gravid uterus (aortocaval compression, diaphragmatic splinting, altered spinal curvature).
  • (3) Increased maternal metabolic demand and biochemical changes driven by the fetoplacental unit (increased O2 consumption and CO2 production).
    • These adaptations begin as early as the first trimester (well before mechanical effects of the uterus become significant) important exam point, since many changes (e.g., reduced neuraxial dose requirement, reduced MAC) are biochemical/hormonal in origin, not purely mechanical.
    • Nearly every organ system is affected; anaesthetic management must account for altered pharmacokinetics, pharmacodynamics, physiological reserve, and the presence of a second patient (the fetus).
  1. Key Quantitative Changes

Variable

Direction

Blood volume

Plasma volume

RBC volume

Cardiac output

Stroke volume

Heart rate

Systemic vascular resistance

Systolic BP

Diastolic BP

CVP / PCWP

Pulmonary vascular resistance

Colloid osmotic pressure

  1.  ECG & Auscultatory Changes
    • ECG: shortened PR interval, uncorrected QT interval, small right axis deviation (1st trimester) shifting to left axis deviation (3rd trimester, due to diaphragmatic elevation), transient ST changes, and benign ectopics (atrial/ventricular) and sinus tachycardia are the commonest benign dysrhythmias.
    • Auscultation: loud, split S1; systolic ejection murmur (tricuspid annular dilation); S3 (and sometimes S4) audible – of no clinical significance in isolation; apex beat displaced left and up.
    • Red flags requiring cardiology work-up: any diastolic murmur, systolic murmur > grade III, severe arrhythmia, or unequivocal cardiomegaly on imaging – these are NOT explained by normal pregnancy physiology.

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  1. Lung Volumes, Capacities & Ventilation (% change from non-pregnant, at term)


Parameter

Parameter


Tidal volume (TV)

Minute ventilation

Inspiratory reserve volume

Alveolar ventilation

Expiratory reserve volume

Respiratory rate

Residual volume

Dead space

Functional residual capacity (FRC)

Closing capacity

Inspiratory capacity

Pulmonary resistance

Vital capacity / Total lung capacity

FEV1, FEV1/FVC,

flow-volume loop

Because FRC falls while closing capacity is unchanged, the FRC/CC ratio falls – predisposing to small-airway closure, atelectasis, and V/Q mismatch, especially supine. Reduced FRC + increased O2 consumption together explain the rapid desaturation on induction of general anaesthesia in pregnancy.

    • Oxyhaemoglobin dissociation curve shifts right in the mother (P50 2730 mm Hg) but lies to the left in the fetus (P50 ~18–19 mm Hg) this gradient promotes O2 offloading from mother to fetus across the placenta .
    • O2 consumption increases 20–60% (Miller: 20–35% at term, further rising in labour to +40% in the first stage and +75% in the second stage) due to fetal/placental/uterine metabolic demand and increased maternal cardiac and respiratory work.
    • After 99% denitrogenation, time to SpO2 <90% is ~4 minutes in pregnant patients vs ~7 min 25 sec in non-pregnant – underscoring the importance of thorough pre-oxygenation.

Upper Airway Changes

    • Oestrogen-driven increase in airway connective tissue, blood volume, total body water, and interstitial fluid capillary engorgement, mucosal friability, and oedema of the nasopharynx, oropharynx, larynx and trachea from early in the first trimester.
    • Mallampati class tends to worsen as pregnancy/labour progresses (further increased by active pushing in the second stage and by pre-eclampsia).
    • Avoid nasal instrumentation/nasotracheal intubation/nasogastric tubes unless essential risk of brisk epistaxis.
    • Use a smaller cuffed endotracheal tube, typically 6.0–7.0 mm ID (commonly quoted as 6.5 mm as a good default), because of airway oedema and narrowing.

Anaesthetic Significance

    • Airway management is more challenging: weight gain/breast engorgement hinder laryngoscope insertion; friable mucosa bleeds easily; failed intubation rates are historically quoted as higher in obstetric than general surgical populations.
    • Response to anaesthetics: reduced MAC; faster inhalational induction (reduced FRC + increased minute ventilation faster rise in FA/FI); increased sensitivity to IV induction agents and benzodiazepines risk of rapid overdose/loss of airway reflexes.

Greater risk of hypoxaemia during apnoea: reduced O2 reserve (FRC) + increased O2 consumption + rapid airway obstruction potential.

  • Effective labour analgesia prevents the maternal and fetal hypoxaemia associated with pain-induced hyper-/hypoventilation cycles.
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      • Progesterone and oestrogen relax lower oesophageal sphincter (LES) tone reduced barrier pressure.
      • The enlarging uterus elevates and rotates the stomach, shifting the intra-abdominal oesophagus into the thorax and abolishing the protective “pinch-valve” effect at the diaphragmatic hiatus.
      • Placental (ectopic) gastrin secretion may increase gastric acidity, although plasma gastrin levels themselves are often reduced/unchanged in studies.
      • Gastric emptying of solids/liquids is NOT delayed by pregnancy itself (confirmed on ultrasound studies, including in obesity) this is a common exam misconception. It IS delayed by: painful uterine contractions/labour, opioids (parenteral or neuraxial, e.g. added fentanyl), and anxiety.
      • Epidural analgesia without opioid does not impair gastric emptying, and may even facilitate it.
      • Current ASA/consensus position: clear liquids may be consumed during labour by low-risk labouring patients without additional risk factors (obesity, diabetes, difficult airway) – solids should still be avoided.
      • Net effect: increased risk of regurgitation and pulmonary aspiration, and increased severity of pulmonary injury if aspiration occurs, due to lower gastric pH and higher volume.

    Anaesthetic Significance

      • All labouring patients are considered to have a “full stomach”.
      • Aspiration prophylaxis (non-particulate antacid ± H2-blocker/PPI ± prokinetic) should be considered before any anaesthetic (neuraxial or general) from the point of view of “worst case” conversion to GA.
      • Rapid sequence induction with cricoid pressure (traditionally) and cuffed tracheal tube remains the default technique for general anaesthesia after ~12–18 weeks’ gestation (practice varies by guideline/era see Section 18 for the evolving cricoid pressure evidence).

     

      • Absolute hepatic blood flow does not change significantly, but the fraction of cardiac output reaching the liver falls (~35% reduction relative to total CO, per WhatsApp/Kaushik notes) even as systemic flow rises – Miller states hepatic blood flow itself is essentially unchanged; know both framings.
      • AST, ALT, and bilirubin rise to the upper limit of normal; overt elevation should still prompt work-up.
      • Alkaline phosphatase rises up to 2–4× normal due to placental (and fetal) ALP production this makes ALP unreliable as a marker of hepatobiliary disease in pregnancy.
      • Plasma albumin and total protein fall progressively across trimesters (albumin ~4.1–5.3 g/dL non-pregnant as low as 2.3–4.2 g/dL by the third trimester); albumin:globulin ratio falls from ~1.4 to ~0.9 more free (unbound) fraction of highly protein-bound drugs.
      • Spider naevi, palmar erythema, and oesophageal varices/telangiectasia can occur in up to 60% of normal pregnancies from high oestrogen do NOT automatically imply liver disease, but caution is still needed with nasogastric tubes/oesophageal temperature probes because of possible varices.
      • Plasma cholinesterase (pseudocholinesterase) activity falls ~25–30% antepartum and further to <60% of

    non-pregnant values postpartum, but this rarely causes clinically significant prolongation of succinylcholine

    block at standard doses.

      • Increased incidence of gallbladder disease (incomplete emptying, altered bile composition); acute cholecystitis is the second most common cause of the acute abdomen in pregnancy.

     

      • Among the earliest and most dramatic physiological changes of pregnancy.
      • Renal blood flow 50–80%; kidneys enlarge by up to 30%.
      • GFR ~40–65% (Miller: up to 50% by the third month, sustained until ~3 months postpartum) creatinine clearance rises.
      • Because of the raised GFR, “normal” non-pregnant BUN/creatinine values are relatively elevated for pregnancy: normal pregnant values are approximately creatinine 0.5 mg/dL and BUN 9 mg/dL values in the “normal” non-pregnant range may reflect significant renal impairment in a pregnant patient.
      • Relaxin drives renal vasodilation; progesterone causes smooth-muscle relaxation and dilation of the ureters and renal pelvis up to 80% of women develop physiological hydronephrosis by mid-pregnancy (more marked on the right due to uterine dextrorotation) – predisposes to urinary stasis and UTI, and can confound imaging interpretation.

    Reduced proximal tubular reabsorption with increased filtered load causes physiological glucosuria (up to 1–10 g/day) and mild proteinuria (up to 200–300 mg/day, upper limit of normal often quoted as 300 mg/24h) both are normal in pregnancy; significant proteinuria (e.g., ≥300 mg/24h with hypertension) raises concern for

    pre-eclampsia.

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    1. Blood Volume & Red Cell Indices
      • Plasma volume increases proportionally more than red cell volume physiological (dilutional) anaemia of pregnancy; typical term haemoglobin ~11.6 g/dL (values below this at any stage should prompt evaluation for true anaemia, e.g. iron deficiency).
      • Physiological hypervolaemia serves to: improve nutrient delivery to the fetus, protect against maternal hypotension, buffer delivery blood loss, and (via reduced viscosity) reduce resistance to flow through the uteroplacental bed.
      • Driven by oestrogen/progesterone-mediated activation of the renin-angiotensin-aldosterone system (sodium and water retention: ~900 mEq sodium, ~7000 mL total body water retained), and by rising plasma adrenomedullin.
      • White cell count rises physiologically (leukocytosis, up to 13,000/mm³ is normal; can rise further in labour, unrelated to infection) – do not over-interpret a mildly raised WCC as sepsis in isolation.
      1. Plasma Proteins
      • Total plasma protein falls (~7.8 7.0 g/dL); albumin falls proportionally more than globulin falling albumin:globulin ratio.
      • Colloid osmotic pressure falls by ~5 mm Hg (WhatsApp note) / 2722 mm Hg (Miller) increases susceptibility to pulmonary oedema, particularly relevant in pre-eclampsia and with aggressive fluid therapy.
      1. Coagulation Pregnancy is a Hypercoagulable State

    Increased

    Unchanged

    Decreased

    Fibrinogen (I), VII, VIII, IX, X, XII

    Factor II (prothrombin), Factor V

    Factor XI, Factor XIII

    Fibrinopeptide A, fibrin degradation products, plasminogen

    Platelet count (often only mild

    in 3rd trimester)

    Antithrombin III, Protein S (Protein C unchanged)


      • PT and aPTT are both shortened by ~20%; conventional coagulation tests do NOT reliably detect these changes.
      • Thromboelastography (TEG)/ROTEM show a hypercoagulable trace: R, K, α-angle, MA, lysis changes evident from as early as 10–12 weeks and more marked in labour.
      • Platelet count: unchanged, or a mild (~10%) fall in the third trimester from dilution and increased turnover. About 8% of otherwise healthy women have a platelet count <150,000/mm³ usually gestational thrombocytopenia (a diagnosis of exclusion, rarely <70,000/mm³, not associated with abnormal bleeding). Bleeding time is not altered by normal pregnancy.
      • Differential diagnosis of thrombocytopenia in pregnancy: gestational thrombocytopenia, hypertensive disorders of pregnancy (pre-eclampsia/HELLP), and immune (idiopathic) thrombocytopenic purpura.

    Anaesthetic Significance

      • A routine platelet count is not required before neuraxial anaesthesia in an otherwise healthy, asymptomatic parturient.
      • If thrombocytopenia is suspected clinically (pre-eclampsia, easy bruising, known ITP), a platelet count (and clinical bleeding assessment) should be obtained before neuraxial block.
      • Despite “normal” intrapartum blood loss being well tolerated, the net hypercoagulable state increases the risk of venous thromboembolism throughout pregnancy and especially postpartum VTE prophylaxis is an important part of peripartum care.

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      • Cerebral blood flow increases.
      • MAC of volatile anaesthetics is reduced by up to 30–40% (animal studies show up to 40% reduction; human studies ~28% reduction in the first trimester Miller 10th ed.) and this reduced requirement is present from very

    early in gestation.

      • Mechanism is not fully clear; likely multifactorial with a probable role for progesterone; interestingly, EEG data suggest the reduction in MAC (immobility response) may act predominantly at the level of the spinal cord rather than a change in cortical/brain anaesthetic sensitivity per se a nuanced, exam-relevant point from Miller 10th ed.
      • Faster inhalational induction: reduced FRC + increased minute ventilation more rapid rise in alveolar (FA) to inspired (FI) anaesthetic concentration ratio.
      • Increased sensitivity to IV induction agents (propofol) and sedatives (benzodiazepines) reduce doses accordingly.
      • Neuraxial local anaesthetic dose requirements fall by ~40% at term (subarachnoid dose reduced by ~25–30%; epidural dose unaltered or only slightly reduced) – local anaesthetic requirements return to normal by 8–24 hours postpartum.
      • Two proposed mechanisms for reduced neuraxial requirement:
    • Mechanical: aortocaval compression engorged epidural venous plexus + increased epidural fat reduced epidural space and CSF volume per spinal segment greater spread of a given LA dose.
    • Biochemical/hormonal: progesterone alters neuronal membrane sodium channel activity/permeability, and CSF specific gravity and acid-base changes occur – this explains why reduced LA requirement is detectable as early as the end of the first trimester, well before any significant mechanical venous engorgement has developed.
      • Technical considerations for neuraxial block: increased lumbar lordosis (narrows interspinous gaps, may make landmark palpation harder); apex of thoracic kyphosis sits at a higher level; in the lateral position a head-down tilt naturally occurs due to a wider pelvis (may cause unexpectedly rostral spread).
      • Relative resistance to vasopressors is described (altered receptor sensitivity) but note the opposite is also quoted for chronotropes/vasopressors used during GA – be ready to explain both contexts if asked. 
    • Total T3/T4 rise (oestrogen-driven increase in thyroid-binding globulin); free T3/T4 remain unchanged the patient is clinically euthyroid.
    • TSH falls in the first trimester (cross-reactivity of hCG with the TSH receptor) and normalises thereafter.
    • Reduced peripheral tissue sensitivity to insulin (placental hormones, e.g. human placental lactogen, are diabetogenic) higher post-prandial glucose after a carbohydrate load; exaggerated starvation ketosis can occur

    due to high fetoplacental glucose consumption.

    • Hyperplasia of pituitary lactotrophs physiological hyperprolactinaemia.
    • Active (free) cortisol levels rise ~2.5× above non-pregnant levels (increased production and decreased clearance).
    • Relaxin increases joint laxity/mobility throughout pregnancy.
    • Progressive lumbar lordosis compensates for the shifting centre of gravity from the enlarging uterus and weight gain strain on the lower back and pelvic joints, and increased fall risk.


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