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Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_781_Библиотеки_им_академика_М_И_Перельмана

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192 MUSCULOSKELETAL FACTORS IN LEG ULCERS
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emptying of the venous system, which can lead to venous hyperten­sion and VLUs (Yang et al. 1999; Houghton etal. 2021). Optimal movement of the ankle is also important for ecient ambulation. A reduction in ankle movement is known to have an impact on knee and hip function, which can lead to gait dysfunction and compro­mise the eciency of the lower limb VMPs (Simonsen 2014). Pain can also cause a person to restrict movement of a joint and when this occurs at the ankle it can result in an antalgic gait pattern. An antal­gic gait pattern is dened as a way of walking that ooads or reduces pain in an area of the body and can result in a limp or irregular walk­ing pattern (Simonsen2014).
An example of the impact in the lower limb when an antalgic gait is present is when a patient ooads a painful ulcer in the medial ankle by lifting the heel during gait. This change in the position and movement of the ankle results in a contracture of the calf muscle complex, a change in the alignment of the ankle and subtalar joint and reduced ankle joint ROM leading to an equinus foot position. Over time, this equinus foot position can become rigid which can cause malalignment at the knee, hip and pelvis. This has an impact on the CMP and will restrict its ecacy due to the malalignment of the foot and ankle.
The National Wound Care Strategy Programme (National Wound Care Strategy 2023) recognises the importance of assessing ankle joint mobility: ‘joint mobility, particularly that of the ankle, is an important component of calf muscle pump function and should be carefully recorded’ (National Wound Care Strategy2023). Therefore, recognition of reduced ankle joint ROM and its impact on wound healing and gait dysfunction is important within clinical practice, as this loss can lead to complications and impaired wound healing (Wounds2016).
LOWER LIMB VENO- MUSCULAR PUMPS
The underlying factors in the development of CVD and VLUs are multifactorial (NWCSP2020). There are three important physiologi­cal factors that can exist in isolation or in any combination that can lead to the development and longevity of CVD and VLUs (NICE2021).
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These are valvular insuciency, venous obstruction and CMP dys­function (NICE2021).
Arterial blood ow is operated by the rhythmic pumping action of the heart and through the elastic recoil of the arterial walls (Hor­wood2021).The venous system is subject to lower pressures compared with, and is structurally dierent from, the arterial system within the systemic circulation (Kan and Delis2001). Veins contain valves. The venous bicuspid valves in the lower limb work through antegrade pressure gradients, causing the opening and closure of the valves when there is a reversal in the pressure gradient above and below the valves moving blood ow proximally (Horwood2019). However, in the presence of CVD these valves can fail. That coupled with the force of gravity and the fact that humans are bipedal can inhibit venous return. To overcome factors that inhibit venous return, the VMPs have evolved in the lower limb and work to activate MSK pumps through movement (Horwood 2019). These VMPs are vital in mitigating increased venous pressure by aiding venous return when standing upright and walking through a pumping action when moving, espe­cially during walking (Padberg etal.2004; Williams etal.2014).
There are three VMPs located in the lower limb: one on the foot, the calf muscle complex in the posterior lower leg and the posterior thigh. These pumps, particularly the CMP, act as a peripheral heart by mechanically generating venous return from the foot pump via the CMP to the thigh pump during the cyclical, synchronised move­ments in the gait cycle (Ricci2020).
Foot Pump
The foot pump is located within the venous network of the plantar and dorsal foot. There are ve venous systems located in the foot: the supercial and deep veins on the plantar surface of the foot, the supercial dorsal plexus, and the marginal and dorsal arch perforat­ing systems (Ricci2020). The foot pump was considered historically to be insignicant in the physiological return of blood proximally in the lower limb and was theorised to work during weight- bearing only (Gardner etal.1983). However, it is now theorised that the operation of the foot pump depends on many factors, which include compliance of the soft tissues surrounding the foot veins, the deep fascia, intrinsic
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muscle activity and ankle kinematics (motion) (Horwood 2019). Therefore, ecient function of the foot pump also depends on intact and fully functioning structures in the foot.
Calf Muscle Pump
The CMP can be divided into two anatomical locations (Ricci2020). The leg pump is located in the veins of the soleus muscle and the popliteal pump ends in the popliteal vein (Ricci2020). The medial gastrocnemius veins have a distinct plexus (network of blood vessels) of veins above the knee (Uhl and Gillot 2015; Ricci 2020). In the lower leg the lateral veins of the soleus are larger than the medial veins. These drain vertically into the peroneal veins. The medial veins of the soleus are smaller and join the posterior tibial veins hori­zontally (Uhl and Gillot2015). At the popliteal level within the lower limb, the medial gastrocnemius veins are the largest veins that end uniquely as a large collector into the popliteal vein above the knee joint. When walking, with each step muscular activity exerts pressure on the venous system and there is a high- speed ejection within the venous network that propels a powerful jet of venous blood into the popliteal vein (Uhl and Gillot2015).
Thigh Pump
The most proximal pump within the lower limb is the thigh pump. The semimembranosus muscles and the femoral vein work in tan­dem in this anatomical area to generate venous return during walk­ing and movement (Uhl and Gillot2015).
Mechanism ofAction ofthe Veno- muscular Pumps
The VMPs are musculo- venous pumps that perform an important role in venous return in the lower limb through a chain of events that occurs through the activation of the muscles located in the lower limb during walking (Uhl and Gillot2015). However, these are not the only mechanisms through which pressure is generated within the VMPs.
The muscle groups that make up the VMPs in the lower limb are organised into myofascial compartments of the lower limb – for example, the posterior compartment of the lower leg has a deep and
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supercial region, and the group of muscles is encased in a fascia (Meissner 2005; Palastanga and Soames 2018). These myofascial compartments are encased in connective fascial tissue, which further helps increase pressures within the compartments and assists ante­grade blood ow.
During gait or on joint movement, muscles within these com­partments in the lower limb will eccentrically (lengthen) or concen­trically (shorten) contract, and this tightens the fascial compartments and associated connective tissues (Palastanga and Soames2018). The net result is increased pressure on the venous system passing through the muscle or the compartment of the leg (Horwood 2019). This mechanism of action occurs regardless of the type of muscular con­traction, whether this be eccentric or concentric contraction. These mechanisms when working optimally result in unhampered venous return (Horwood2019).
Calf Muscle Pump Dysfunction
Research suggests that CMP dysfunction is estimated to be present in 55% of people who have CVD (Williams etal.2014). Adequate venous return is dependent on a patent, healthy venous system, optimal gait and an operational CMP. The CMP is considered the ‘second heart’ and is a contributor to the cardiovascular system by enabling venous return from the lower limb to the right atrium (Halkar etal.2020). In understanding how CMP dysfunction can develop from a mechanical aspect, it is important to understand the basic function of the ankle joint.
In terms of its structure, the appearance of the ankle joint is like that of a mortise and tenon and it is constructed at the distal ends of the tibia and fibula with the superior aspect of the talus (Palastanga and Soames2018). The ankle joint is a synovial hinge joint. The ankle joint is classically considered to move around asingle axis, within the sagittal plane, and the primary motion in this plane is dorsiflexion and plantarflexion (Brockett and Chapman2016). The ankle joint is a complex of the talocalcaneal (subtalar), tibiotalar (talocrural) and transverse tarsal (talocalca­neonavicular) joints (Brockett and Chapman 2016). Although dorsiflexion and plantarflexion are the primary movements, there is also a smaller degree of movement in the transverse (adduction
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and abduction) and frontal planes (inversion and eversion) (Brockett and Chapman2016; Palastanga and Soames2018).
It is the movements of dorsiexion and plantarexion that occur at the ankle joint that inuence muscle activity and tissue tension in the triceps surae (calf muscle) complex in the posterior compartment of the lower leg. These movements trigger CMP activa­tion (Horwood2021). Any alteration in dorsiexion and plantarex­ion clinically is of relevance and will have the greatest mechanical impact on a patient’s gait and CMP function. The possible reasons behind a reduction in ankle joint ROM or biomechanical alteration are multifactorial and should be considered when taking a holistic history.
ANKLE JOINT ASSESSMENT
The ankle joint is complex and forms the link between the interface of the lower leg and the ground via the foot (Brockett and Chap­man2016). It is crucial in the operation of the VMPs in the lower limb. Its function is key not only as the simple machine that helps the CMP to function, but also as an important joint that aids sagittal plane (dorsiexion and plantarexion) movement in the lower limb, allowing people to walk eciently and perform other activities of daily life (Brockett and Chapman2016).
Given these factors and the impact of reduced ankle joint ROM, which can contribute to the development and chronicity of VLUs, it is vital that ankle joint mobility is assessed on a regular basis (NWCSP2020). Ideally, when assessing if joint ROM is impaired, then the joint under measurement should be compared to matched con­trols to determine if there is an impairment (Norkin and White2016). However, when this is not possible the contralateral limb should be used for comparison if it is not impaired (Norkin and White2016).
Assessing ankle joint ROM can be done in several ways using quantitative and qualitative measures. There are several instruments that are available to measure joint ROM that range from tape meas­ures to manual and digital goniometers (Figure 4.2), inclinometers and motion capture devices (Norkin and White2016).
A goniometer is a device that measures angles and allows the rotation of an object to a dened position. It is still the most used,
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(a) (b)
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FIGURE 4.2 (a) Universal and (b) digital goniometers.
economical, portable device for the evaluation of ROM (Nussbaumer et al. 2010; Norkin and White 2016). Competency in goniometry requires that the examiner is knowledgeable in the structure and function of each joint measured and demands a specic skill set to enable accurate results (Norkin and White2016). The use of a goni­ometer is not always common within nursing practice. Therefore, when in- depth assessment of ankle joint ROM using the goniometer is required, the patient should be referred to a therapist who can accurately carry out these measurements.
One method of assessing ankle ROM is by looking at, feeling and moving the joint. These skills would be within the clinical skill set of nursing:
Look: Visually inspect the position of the ankle when the patient
is on the couch. Look at the alignment of the ankle and check if there is any visual oedema around the ankle joint, as this can lead to a restriction in ROM.
Feel: Palpate around the joint, as this enables the clinician to
determine the type of oedema present, and/or if there are any unusual anatomical changes in the ankle joint or any bony pathology, like osteoarthritis or any other anatomical variation.
Move: Moving the joint by way of dorsiexing and plantarexing
the foot will enable the clinician to determine if the ankle is rigid,
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semi- rigid, exible or hypermobile. Compare to the contralateral side if this is not impaired to gain an awareness of the possible impairment on the side being assessed.
HOLISTIC HISTORY TAKING RELATING TOFACTORS THAT INFLUENCE BIOMECHANICAL LOWER LIMB FUNCTION
Taking a thorough medical history that includes social and patient­related factors like injuries is key to understanding a patient’s issues and establishing information that may relate to their mobility (Day 2015). The information gained in the history will guide the practitioner in their physical examination and determine the relevant clinical tests that may be required. Thorough history taking facili­tates the collection of important information that will be relevant when communicating with other practitioners involved in the care of the patient or gathering information that will be required when making a referral (Franks et al.2016). Knowledge of the medical history that relates to lower limb function is vital, because it identi­es those patients with modiable biomechanical risk factors that can result in CMP dysfunction or gait issues that can have an impact on wound healing.
People with CVD and VLUs typically have a disproportionate number of co- morbidities and may report lower levels of activity and decreased mobility compared to the population. (Clarke- Moloney et al. 2007). Many patients with VLUs may be physically decondi­tioned and have compromised core strength and lower limb weakness, and may present with gait and biomechanical issues (Clarke- Moloney etal.2007; Farrelly2018). Therefore, identifying the patient- related factors and managing biomechanical- related issues is paramount for optimising mobility and biomechanical function.
Immobility andImpaired Mobility History
Impaired and reduced mobility is a signicant issue that needs to be explored during history taking, as impaired mobility will have a deleterious impact on the lower limb in terms of the development and progression of CVD. Impaired or reduced mobility can be due to
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several causes and these need to be established initially so that a tailored management approach can be instigated.
Causes of immobility that are implicated in the development of VLUs can include inammatory and non­diseases, peripheral arterial disease (PAD), neural disease and other acquired or congenital MSK diseases, obesity, injury or secondary to surgery or isolation (Davies etal.2017). Mobility impairments can be the result of a dysfunction of joint ROM, especially of the ankle, which can lead to reduced CMP function and venous backow within the lower limb (Corley etal.2010; Ricci2020). Impaired mobility can aect a person’s QoL and this can be amplied in people with CVD (Meulendijks etal.2020b).
inammatory rheumatic
Co- morbidities andMedicines
There are numerous co- morbidities that aect mobility and movement (Jordan and Osborne 2007). However, any co-morbidities that aect the musculoskeletal system must be considered when taking history as they may have a direct or indirect impact on the management of patients with CVD and VLU’s. These co- morbidities can inuence the course of management and be barriers to wound healing and optimal mobility (Davies etal.2019). For example, rheumatoid arthritis (RA) can cause joint arthropathy, pain and gait dysfunction (Hennessy etal.2012). RA may be the major underlying factor causing a reduc­tion of ankle joint ROM. The person may be having an inammatory disease are and may need a medicines review to help control symp­toms that can help improve joint ROM at the ankle, for example. Or a patient with VLUs and Parkinson’s disease may have a festinating gait, which is characterised by a stooped posture, a narrow base of gait, a reduced stride length, shuing steps and a propensity to freeze when approaching an object or doorway (Pirker and Katzenschlager2017). This gait pattern will impair mobility, which will have an impact on VMP activity and balance, and can predispose a person to falling. This patient may need modication or review of their medication to help with gait impairment and physiotherapy to assist with balance and gait- related issues, or they may need a walking aid (Pirker and Katzen­schlager2017). These issues in relation to co-morbidites that relate to mobility should be identied as part of holistic assessmentin order to help improve healing and mobility.
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Injury History
When exploring the area of the medical history that relates to identi­fying any possible biomechanical risk factors, it is important to ask about any current injuries or prior injuries during the patient’s life. An injury in childhood may not seem relevant to the patient in the present, but this may have great relevance within the context of the whole clinical picture. For example, an ankle sprain, previous sports injury or fracture may be the catalyst for their current lower limb issue, such as venous damage/disease and chronic oedema.
When asking about any injuries, it is important to document the date, the location and the mechanism of the injury. For example, if it was an ankle sprain gathering the information in Table4.2 in relation to the injury is important.
Information gained in this area may also explain the reason behind a person’s current level of activity, especially if it is reduced or impaired.
Falls History
It is estimated that 30% of over 65s and 50% of the over 80s will fall at least once a year (NICE2019). Falls and the injuries that result from them can be signicant issues, especially for older people (NICE2019). VLUs are estimated to aect 1in 500 people and become
TABLE 4.2 
Area of the injury In what area did the injury occur?
Mechanism of injury How did the injury occur?
Medical treatment Did the patient seek medical help?
Rehabilitation What treatment was undertaken?
Outcome Has the injury resolved itself?
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Important questions toask about injury history.
Were any other areas aected because of the injury?
What movements occurred when the
injury occurred?
Was any medical imaging undertaken? What was the recovery period?
rehabilitation?
Are there any residual issues?
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more ubiquitous with age (NICE2019). People with VLUs are known to exhibit impaired muscle strength, reduced gait speed and impair­ments in joint ROM, and are known to be at greater risk of falling (Humphreys etal.2016; de Souza etal.2022). Falls can be the result of deconditioning, which is also a common biomechanical risk factor for gait dysfunction in people with VLUs (Humphreys et al. 2016). Falls account for 87% of fractures in the elderly and are estimated to cost the NHS more than £2.3 billion annually. Fractures and the immobility associated with falls can have impacts on mobility and this will have a direct negative impact on the lower limb function in terms of an increase in venous hypertension, CVD and VLUs. A his­tory of falls can give clues to the practitioner about the possible decline of mobility or the reason for reduced mobility. Where possi­ble, conduct a mobility screen to gather pertinent information for onward referral for specialist assessment to mitigate the risk of falls and their impact on biomechanical function, gait and complications in patients with VLUs.
Mechanisms ofFalling
Understanding why people fall and the mechanism of the fall is an integral part of the inquiry. If a fall has been reported, this should lead to evidence­etal.2013). Table4.3 describes some of the common intrinsic and extrinsic reasons for falling.
based interventions for the patient (Ambrose
Surgical History
It is important to explore whether any surgical procedure may have triggered an event for the development of CVD or VLUs. Asking about surgery should not be limited to surgery relating to the lower limb; it is important to establish all surgery that the patient has had in their lifetime. For example, coronary bypass grafting (CABG) sur­gery may have involved the harvesting of the great saphenous vein in the leg, and this could be the trigger for the development of CVD.
A triggering event like orthopedic surgery where post- surgical rehabilitation was not optimal may be the underlying reason for the development of CVD or VLUs. Research suggests that persistent post- surgical symptoms can result in poor- quality rehabilitation and
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