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    Intellectual Property Rights Protection in International Investment: Legal Risks and Strategic Responses for Multinational Companies

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    Against the backdrop of ongoing globalisation and the rapid development of the digital economy, the protection of intellectual property rights (IPRs) has become a key factor in the overseas investment decisions of multinational companies (MNCs). This paper first reviews the evolution of international IPR regimes and their essential status in investment agreements. It then takes the Eli Lilly v Canada case as a core example to deeply analyse three significant difficulties currently faced in the protection of IPRs in cross-border investment: first, the uneven enforcement of laws across countries, which leads to inconsistent effectiveness in IPRs protection; second, the vague, outdated, and insufficiently adaptive provisions in existing investment and trade agreements, which fail to cover emerging technological fields effectively; third, the divergence between the application of international agreements and domestic legal systems, which increases legal uncertainty and compliance costs for multinational enterprises. Finally, the paper puts forward recommendations from both state and corporate perspectives, including strengthening international cooperation, improving the dynamic adjustment mechanisms of agreements, and urging enterprises to establish localised IPR strategies and compliance management systems. The article emphasises the need to construct a more coordinated, efficient, and forward-looking international IPR governance system to balance the protection of innovation with national sovereignty and corporate interests

    Simultaneous Multi-Bed MAP Reconstruction with CT-Guided Directional TV Prior for Y-90 PET SIRT

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    Text Yttrium-90 (Y-90) microspheres are used clinically for selective internal radiation therapy (SIRT) for unresectable liver cancers and have been proposed for glioblastoma1,2. Accurate dosimetry is critical but remains challenging due to low-count PET data arising from Y-90’s low positron branching ratio, as well as accurate treatment of bremsstrahlung for SPECT. Anatomically guided edge-preserving regularisation has shown promise for improving reconstruction quality under such conditions3. Whole-organ PET scans often exceed the axial field-of-view, requiring acquisition across multiple, partially overlapping bed positions (BPs). A common approach reconstructs each BP separately and merges them via sensitivity-weighted averaging. However, in overlap regions, low counts and edge-preserving priors can interact to produce intensity discontinuities that obscure image features. We introduce a maximum-a-posteriori (MAP) framework that reconstructs all BPs jointly, with a CT-guided directional total variation (DTV) prior function applied over a combined image volume4. We evaluate this method for Y-90 PET following SIRT. Y-90 SIRT PET data was acquired on a GE Discovery 690 using two BPs, with overlap centred on the liver. We compared two workflows: Separate + Fuse – independent reconstructions with sensitivity-weighted merging post-reconstruction. Joint – Simultaneous reconstruction of both bed positions using a combined image volume, with separate updates computed for the data-fit terms per bed position and a single joint update for the prior term. Visual assessment shows that Separate + Fuse obtains abrupt changes in intensity in the overlap region due to noise. The Joint method suppresses these artefacts and yields a smoother, anatomically consistent distribution (Figure 1). Simultaneous reconstruction of multiple bed positions with a CT-guided DTV prior reduces overlap artefacts and enhances qualitative fidelity in Y-90 SIRT PET. Please click on the \u27PDF\u27 for the full abstract

    Editorial and Contents

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    Editorial and Contents of Review of Scottish Culture 30, 202

    Adrenoceptors in GtoPdb v.2025.3

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    The nomenclature of the Adrenoceptors has been agreed by the NC-IUPHAR Subcommittee on Adrenoceptors [116, 324]. Adrenoceptors, α1 The three α1-adrenoceptor subtypes α1A, α1B and α1D are activated by the endogenous agonists (-)-adrenaline and (-)-noradrenaline. -(-)phenylephrine, methoxamine and cirazoline are agonists and prazosin and doxazosin antagonists considered selective for α1- relative to α2-adrenoceptors. [3H]prazosin and HEAT (BE2254) (BE2254) are relatively selective radioligands. S(+)-niguldipine also has high affinity for L-type Ca2+ channels. Fluorescent derivatives of prazosin (Bodipy FLprazosin- QAPB) are used to examine cellular localisation of α1-adrenoceptors. α1-Adrenoceptor agonists are used as nasal decongestants; antagonists to treat symptoms of benign prostatic hyperplasia (alfuzosin, doxazosin, terazosin, tamsulosin and silodosin, with the last two compounds being α1A-adrenoceptor selective and claiming to relax bladder neck tone with less hypotension); and to a lesser extent hypertension (doxazosin, terazosin). The α1- and β2-adrenoceptor antagonist carvedilol is used to treat congestive heart failure, although the contribution of α1-adrenoceptor blockade to the therapeutic effect is unclear. Several anti-depressants and anti-psychotic drugs are α1-adrenoceptor antagonists contributing to side effects such as orthostatic hypotension. Adrenoceptors, α2The three α2-adrenoceptor subtypes α2A, α2B and α2C are activated by (-)-adrenaline and with lower potency by (-)-noradrenaline. brimonidine (UK14304) and talipexole are agonists and rauwolscine and yohimbine antagonists selective for α2- relative to α1-adrenoceptors. [3H]rauwolscine, [3H]brimonidine (UK14304) and [3H]RX821002 are relatively selective radioligands. There are species variations in the pharmacology of the α2A-adrenoceptor. Multiple mutations of α2-adrenoceptors have been described, some associated with alterations in function. Presynaptic α2-adrenoceptors regulate many functions in the nervous system. The α2-adrenoceptor agonists clonidine, guanabenz and brimonidine (UK14304) affect central baroreflex control (hypotension and bradycardia), induce hypnotic effects and analgesia, and modulate seizure activity and platelet aggregation. clonidine is an anti-hypertensive (relatively little used) and counteracts opioid withdrawal. dexmedetomidine (also xylazine) is increasingly used as a sedative and analgesic in human [64] and veterinary medicine and has sympatholytic and anxiolytic properties. The α2-adrenoceptor antagonist mirtazapine is used as an anti-depressant. The α2B subtype appears to be involved in neurotransmission in the spinal cord and α2C in regulating catecholamine release from adrenal chromaffin cells. Although subtype-selective antagonists have been developed, none are used clinically and they remain experimental tools. Adrenoceptors, β The three β-adrenoceptor subtypes β1, β2 and β3 are activated by the endogenous agonists (-)-adrenaline and (-)-noradrenaline. Isoprenaline is selective for β-adrenoceptors relative to α1- and α2-adrenoceptors, while propranolol (pKi 8.2-9.2) and cyanopindolol (pKi 10.0-11.0) are relatively selective antagonists for β1- and β2- relative to β3-adrenoceptors. (-)-noradrenaline, xamoterol and (-)-Ro 363 show selectivity for β1- relative to β2-adrenoceptors. Pharmacological differences exist between human and mouse β3-adrenoceptors, and the \u27rodent selective\u27 agonists BRL 37344 and CL316243 have low efficacy at the human β3-adrenoceptor whereas CGP 12177 (low potency) and L 755507 activate human β3-adrenoceptors [88]. β3-Adrenoceptors are resistant to blockade by propranolol, but can be blocked by high concentrations of bupranolol. SR59230A has reasonably high affinity at β3-adrenoceptors, but does not discriminate between the three β- subtypes [520] whereas L-748337 is more selective. [125I]-cyanopindolol, [125I]-hydroxy benzylpindolol and [3H]-alprenolol are high affinity radioligands that label β1- and β2- adrenoceptors and β3-adrenoceptors can be labelled with higher concentrations (nM) of [125I]-cyanopindolol together with β1- and β2-adrenoceptor antagonists. Fluorescent ligands such as BODIPY-TMR-CGP12177 can be used to track β-adrenoceptors at the cellular level [8]. Somewhat selective β1-adrenoceptor agonists (denopamine, dobutamine) are used short term to treat cardiogenic shock but, chronically, reduce survival. β1-Adrenoceptor-preferring antagonists are used to treat cardiac arrhythmias (atenolol, bisoprolol, esmolol) and cardiac failure (metoprolol, nebivolol) but also in combination with other treatments to treat hypertension (atenolol, betaxolol, bisoprolol, metoprolol and nebivolol) [820]. Cardiac failure is also treated with carvedilol that blocks β1- and β2-adrenoceptors, as well as α1-adrenoceptors. Short (salbutamol, terbutaline) and long (formoterol, salmeterol) acting β2-adrenoceptor-selective agonists are powerful bronchodilators used to treat respiratory disorders. Many first generation β-adrenoceptor antagonists (propranolol) block both β1- and β2-adrenoceptors and there are no β2-adrenoceptor-selective antagonists used therapeutically. The β3-adrenoceptor agonist mirabegron is used to control overactive bladder syndrome. There is evidence to suggest that β-adrenoceptor antagonists can reduce metastasis in certain types of cancer [327]

    Angiotensin receptors in GtoPdb v.2025.3

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    The actions of angiotensin II (Ang II) are mediated by AT1 and AT2 receptors (nomenclature as agreed by the NC-IUPHAR Subcommittee on Angiotensin receptors [63, 155]), which have around 30% sequence similarity. The octapeptide angiotensin II and the heptapeptide angiotensin III are endogenous ligands. The "sartan" family drugs such as losartan, candesartan, olmesartan, telmisartan, etc. are clinically used AT1 receptor blockers

    Gonadotrophin-releasing hormone receptors in GtoPdb v.2025.3

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    GnRH1 and GnRH2 receptors (provisonal nomenclature [39], also called Type I and Type II GnRH receptor, respectively [85]) have been cloned from numerous species, most of which express two or three types of GnRH receptor [85, 84, 116]. GnRH I (p-Glu-His-Trp-Ser-Tyr-Gly-Leu-Arg-Pro-Gly-NH2) is a hypothalamic decapeptide also known as luteinizing hormone-releasing hormone, gonadoliberin, luliberin, gonadorelin or simply as GnRH. It is a member of a family of similar peptides found in many species [85, 84, 116] including GnRH II (pGlu-His-Trp-Ser-His-Gly-Trp-Tyr-Pro-Gly-NH2 (which is also known as chicken GnRH-II). Receptors for three forms of GnRH exist in some species but only GnRH I and GnRH II and their cognate receptors have been found in mammals [85, 84, 116]. GnRH1 receptors are expressed by pituitary gonadotrophs, where they mediate the effects of GnRH on gonadotropin hormone synthesis and secretion that underpin central control of mammalian reproduction. GnRH analogues are used in assisted reproduction and to treat steroid hormone-dependent conditions [58]. Notably, agonists cause desensitization of GnRH-stimulated gonadotropin secretion and the consequent reduction in circulating sex steroids is exploited to treat hormone-dependent cancers of the breast, ovary and prostate [58]. GnRH1 receptors are selectively activated by GnRH I and all lack the COOH-terminal tails found in other GPCRs. GnRH2 receptors do have COOH-terminal tails and (where tested) are selective for GnRH II over GnRH I. GnRH2 receptors are expressed by some primates but not by humans [88]. Phylogenetic classifications divide GnRH receptors into three [85] or five groups [132] and highlight examples of gene loss through evolution, with humans retaining only one ancient gene. The structure of the GnRH1 receptor in complex with elagolix has been elucidated [135]. Cryo-EM structures of GnRH bound to both pig and frog GnRHRs have also been reported [115]

    Melanocortin receptors in GtoPdb v.2025.3

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    Melanocortin receptors (provisional nomenclature as recommended by NC-IUPHAR [41]) are activated by members of the melanocortin family (α-MSH, β-MSH and γ-MSH forms; δ form is not found in mammals) and adrenocorticotrophin (ACTH). Endogenous antagonists include agouti and agouti-related protein. ACTH(1-24) was approved by the US FDA as a diagnostic agent for adrenal function test. setmelanotide was approved by the US FDA for weight management in patients with POMC, PCSK1 or LEPR defiency, bremelanotide was approved by the US FDA for generalized hypoactive sexual desire disorder in premenopausal women, and NDP-MSH (afamelanotide) was approved by the EMA for the treatment of erythropoietic protoporphyria. Several synthetic melanocortin receptor agonists are under clinical development

    Neuropeptide S receptor in GtoPdb v.2025.3

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    The neuropeptide S receptor (NPS receptor) responds to the 20 amino-acid peptide neuropeptide S derived from a precursor (NPS, P0C0P6). NPS activates its receptor at low nanomolar concentrations elevating intracellular cAMP and calcium levels [74]. Currently, some peptidic and small molecule NPS receptor antagonists are available as research tools [30, 82, 9, 62]. No NPS receptor ligands are currently used clinically

    Tachykinin receptors in GtoPdb v.2025.3

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    Tachykinin receptors (provisional nomenclature as recommended by NC-IUPHAR [91]) are activated by the endogenous peptides substance P (SP), neurokinin A (NKA; previously known as substance K, neurokinin α, neuromedin L), neurokinin B (NKB; previously known as neurokinin β, neuromedin K), neuropeptide K and neuropeptide γ (N-terminally extended forms of neurokinin A). The neurokinins (A and B) are mammalian members of the tachykinin family, which includes peptides of mammalian and nonmammalian origin containing the consensus sequence: Phe-x-Gly-Leu-Met. Marked species differences in in vitro pharmacology exist for all three receptors, in the context of nonpeptide ligands. Antagonists such as aprepitant and fosaprepitant were approved by FDA and EMA, in combination with other antiemetic agents, for the prevention of nausea and vomiting associated with emetogenic cancer chemotherapy

    Calcium- and sodium-activated potassium channels (KCa, KNa) in GtoPdb v.2025.3

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    Calcium- and sodium- activated potassium channels are members of the 6TM family of K channels which comprises the voltage-gated KV subfamilies, including the KCNQ subfamily, the EAG subfamily (which includes hERG channels), the Ca2+-activated Slo subfamily (actually with 6 or 7TM) and the Ca2+- and Na+-activated SK subfamily (nomenclature as agreed by the NC-IUPHAR Subcommittee on Calcium- and sodium-activated potassium channels [144]). As for the 2TM family, the pore-forming a subunits form tetramers and heteromeric channels may be formed within subfamilies (e.g. KV1.1 with KV1.2; KCNQ2 with KCNQ3)

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